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    Learn what's new for iPhone, Apple Watch, and AirPods.

    APPLE EVENT • Learn what's new for iPhone, Apple Watch, and AirPods.

  • Lex Fridman Podcast
    Lex Fridman Podcast

    1

    Lex Fridman Podcast

    Lex Fridman

  • Lenny's Podcast: Product | Career | Growth
    Lenny's Podcast: Product | Career | Growth

    2

    Lenny's Podcast: Product | Career | Growth

    Lenny Rachitsky

  • Waveform: The MKBHD Podcast
    Waveform: The MKBHD Podcast

    3

    Waveform: The MKBHD Podcast

    MKBHD

  • Acquired
    Acquired

    4

    Acquired

    Ben Gilbert and David Rosenthal

  • Unicorn Graveyard: Tech's Rises & Falls
    Unicorn Graveyard: Tech's Rises & Falls

    5

    Unicorn Graveyard: Tech's Rises & Falls

    Talking Labs

  • Latent Space: The AI Engineer Podcast
    Latent Space: The AI Engineer Podcast

    6

    Latent Space: The AI Engineer Podcast

    Latent.Space

  • The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
    The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)

    7

    The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)

    Sam Charrington

Essentials

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    Updated twice weekly

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    Technology

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    Technology
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    Business
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    Weekly series

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  • Uncanny Valley | WIRED
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  • #502 – Psychiatry, Insane Asylums, Mental Illness, ECT, Lobotomies, Freud & Jung

    6 days ago

    #502 – Psychiatry, Insane Asylums, Mental Illness, ECT, Lobotomies, Freud & Jung

    Andrew Scull is a historian of psychiatry. Thank you for listening ❤ Check out our sponsors: https://lexfridman.com/sponsors/ep502-sc See below for timestamps, transcript, and to give feedback, submit questions, contact Lex, etc. Transcript: https://lexfridman.com/andrew-scull-transcript CONTACT LEX: Feedback – give feedback to Lex: https://lexfridman.com/survey AMA – submit questions, videos or call-in: https://lexfridman.com/ama Hiring – join our team: https://lexfridman.com/hiring Other – other ways to get in touch: https://lexfridman.com/contact EPISODE LINKS: Andrew’s Website (UCSD faculty page): https://sociology.ucsd.edu/people/faculty/emeritus/andrew-scull.html Desperate Remedies (book): https://amzn.to/4vmBquI Madness in Civilization (book): https://amzn.to/3SZhd0I SPONSORS: To support this podcast, check out our sponsors & get discounts: Wispr Flow: AI-powered voice dictation app. Go to https://wisprflow.ai/lex Fin: AI agent for customer service. Go to https://fin.ai/lex LMNT: Zero-sugar electrolyte drink mix. Go to https://drinkLMNT.com/lex Shopify: Sell stuff online. Go to https://shopify.com/lex BetterHelp: Online therapy and counseling. Go to https://betterhelp.com/lex Perplexity: AI-powered answer engine. Go to https://perplexity.ai/ OUTLINE: (00:00) – Introduction (01:07) – Sponsors, Comments, and Reflections (08:10) – Crisis in Psychiatry (37:48) – Categories of Mental Illness (45:07) – Asylums, Eugenics, and the Nazis (57:13) – The Ice Pick Lobotomy (1:03:26) – Malaria “Cure” for Syphilis (1:21:42) – Insulin Coma Therapy (1:29:34) – Electroconvulsive Therapy (ECT) (1:49:03) – One Flew Over the Cuckoo’s Nest (2:06:35) – Freud and Psychoanalysis (2:36:30) – WWII and Cognitive behavioral therapy (CBT) (2:57:04) – Antipsychotics (3:20:24) – Antidepressants (3:33:18) – Future of Psychiatry PODCAST LINKS: – Podcast Website: https://lexfridman.com/podcast – Apple Podcasts: https://apple.co/2lwqZIr – Spotify: https://spoti.fi/2nEwCF8 – RSS: https://lexfridman.com/feed/podcast/ – Podcast Playlist: https://www.youtube.com/playlist?list=PLrAXtmErZgOdP_8GztsuKi9nrraNbKKp4 – Clips Channel: https://www.youtube.com/lexclips

  • WTF is a Googlebook?

    4 days ago

    WTF is a Googlebook?

    We are officially in Techtember! First, it's a quick viewflation update from Andrew before Marques and David talk about their experiences using the iPhone 18 Pro. Then it turns to speculation about the upcoming Googlebook event before talking about the Steam Frame and Tesla Roadster event. It's going to be a jam-packed few weeks and the new iPhones are just the beginning. Links: 9to5Google - Google Maps speedometer during navigation MKBHD - iPhone 18 Review Stephen Robles - John Ternus iPhone picture Dave2D - Steam Frame review Linus Tech Tips - Steam Frame review Verge - Meta Slim Headset Leak This episode brought to you by: Shopify: https://www.shopify.com/waveform Pipedrive: https://www.pipedrive.com/waveform Framer: https://www.framer.com/wave Follow us on socials: Marques: https://www.threads.net/@mkbhd Andrew: https://www.threads.net/@andrew_manganelli David: https://www.threads.net/@davidimel Adam: https://www.threads.net/@parmesanpapi17 Ellis: https://twitter.com/EllisRovin Waveform Threads: https://www.threads.net/@waveformpodcast Waveform Instagram: https://www.instagram.com/waveformpodcast/?hl=en Waveform TikTok: https://www.tiktok.com/@waveformpodcast Join the Discord: https://discord.gg/mkbhd Intro/Outro music by 20syl: https://bit.ly/2S53xlC Waveform is part of the Vox Media Podcast Network. Learn more about your ad choices. Visit podcastchoices.com/adchoices

  • The rise of the professional vibe coder (a new AI-era job) | Lazar Jovanovic (Professional Vibe Coder)

    8 Feb

    The rise of the professional vibe coder (a new AI-era job) | Lazar Jovanovic (Professional Vibe Coder)

    Lazar Jovanovic is a full-time professional vibe coder at Lovable. His job is to build both internal tools and customer-facing products purely using AI, while not having a coding background. In this conversation, he breaks down the tactics, workflows, and framework that let him ship production-quality products using only AI. We discuss: 1. Why having no coding background can be an advantage when building with AI 2. Why most of your time should go to planning and chat mode, not prompting 3. What to do when you get stuck: his 4x4 debugging workflow 4. The PRD and Markdown file system that keeps AI agents aligned across complex builds 5. Why kicking off four or five parallel prototypes is the best way to clarify your thinking 6. Why design skills and taste are going to be the most important skills in the future 7. His “genie and three wishes” mental model for making the most of AI’s limitations 8. How product, engineering, and design roles are converging—and what that means for your career — Brought to you by: Strella—The AI-powered customer research platform: https://strella.io/lenny Samsara—Saving lives with AI built for physical operations: https://samsara.com/lenny WorkOS—Modern identity platform for B2B SaaS, free up to 1 million MAUs: https://workos.com/lenny — Episode transcript: https://www.lennysnewsletter.com/p/getting-paid-to-vibe-code — Archive of all Lenny's Podcast transcripts: https://www.dropbox.com/scl/fo/yxi4s2w998p1gvtpu4193/AMdNPR8AOw0lMklwtnC0TrQ?rlkey=j06x0nipoti519e0xgm23zsn9&st=ahz0fj11&dl=0 — Where to find Lazar Jovanovic: • X: https://x.com/lakikentaki • LinkedIn: https://www.linkedin.com/in/lazar-jovanovic • YouTube: https://www.youtube.com/@50in50challenge • Starter Story course: https://build.starterstory.com/build/ai-build-accelerator?via=lazar (code LAZAR15 for 15% off) — Where to find Lenny: • Newsletter: https://www.lennysnewsletter.com • X: https://twitter.com/lennysan • LinkedIn: https://www.linkedin.com/in/lennyrachitsky/ — In this episode, we cover: (00:00) Introduction to Lazar and professional vibe coding (04:53) What a professional vibe coder actually does day-to-day (09:26) Why non-technical backgrounds can be an advantage (12:24) The importance of self-awareness (14:42) His “genie and three wishes” mental model (17:43) Developing taste and judgment in the age of AI (21:46) The parallel project approach for better outcomes (29:30) Creating dynamic context windows with PRDs (36:56) Why elite vibe coders focus on planning, not coding (44:43) Creating MD files to guide AI development (50:57) Why prototyping still matters (56:50) Why “good enough” is no longer good enough (01:00:53) The future of engineering in an AI world (01:05:14) What to do when you get stuck: his 4x4 debugging workflow (01:14:27) Helping agents learn from their mistakes (01:15:35) Why watching agent output is more important than code (01:19:08) The incredible pace of AI development (01:22:55) Why emotional intelligence will become more valuable (01:28:30) How to become a professional vibe coder (01:30:10) Why building in public is the fastest path to opportunities (01:37:03) Final thoughts on focusing on quality over tech stack — Referenced: • The new AI growth playbook for 2026: How Lovable hit $200M ARR in one year | Elena Verna (Head of Growth): https://www.lennysnewsletter.com/p/the-new-ai-growth-playbook-for-2026-elena-verna • Elena Verna on how B2B growth is changing, product-led growth, product-led sales, why you should go freemium not trial, what features to make free, and much more: https://www.lennysnewsletter.com/p/elena-verna-on-why-every-company • The ultimate guide to product-led sales | Elena Verna: https://www.lennysnewsletter.com/p/the-ultimate-guide-to-product-led • 10 growth tactics that never work | Elena Verna (Amplitude, Miro, Dropbox, SurveyMonkey): https://www.lennysnewsletter.com/p/10-growth-tactics-that-never-work-elena-verna • Lovable: https://lovable.dev • Lovable + Shopify: https://lovable.dev/shopify • Everyone’s an engineer now: Inside v0’s mission to create a hundred million builders | Guillermo Rauch (founder and CEO of Vercel, creators of v0 and Next.js): https://www.lennysnewsletter.com/p/everyones-an-engineer-now-guillermo-rauch • Mobbin: https://mobbin.com • Dribbble: https://dribbble.com • 21st.dev: https://21st.dev • Lovable base prompt generator: https://building-advisor.lovable.app/ • Lovable PRD generator: https://chatgpt.com/g/g-67e1e85fbeac8191a69b95c6d5c42ef6-lovable-prd-generator • Felix Haas’s newsletter: https://designplusai.com • Bauhaus: https://en.wikipedia.org/wiki/Bauhaus • Glassmorphism: https://www.figma.com/community/plugin/1197106608665398190/glassmorphism • UI style guide: http://uistyle.lovable.app • Cloudflare: https://www.cloudflare.com • Ben Tossell on X: https://x.com/bentossell • The rise of Cursor: The $300M ARR AI tool that engineers can’t stop using | Michael Truell (co-founder and CEO): https://www.lennysnewsletter.com/p/the-rise-of-cursor-michael-truell • Peter Thiel says AI will be ‘worse’ for math nerds than for writers: https://www.businessinsider.com/peter-thiel-ai-worse-for-math-professionals-than-writers-2024-4 • Andrej Karpathy on X: https://x.com/karpathy • The 100-person AI lab that became Anthropic and Google’s secret weapon | Edwin Chen (Surge AI): https://www.lennysnewsletter.com/p/surge-ai-edwin-chen • Why experts writing AI evals is creating the fastest-growing companies in history | Brendan Foody (CEO of Mercor): https://www.lennysnewsletter.com/p/experts-writing-ai-evals-brendan-foody • Slumdog Millionaire: https://www.imdb.com/title/tt1010048 — Production and marketing by https://penname.co/. For inquiries about sponsoring the podcast, email podcast@lennyrachitsky.com. — Lenny may be an investor in the companies discussed. To hear more, visit www.lennysnewsletter.com

  • The Home Depot

    14 Sept

    The Home Depot

    The Home Depot's founding story is like an Avengers movie… if the Avengers got fired, went broke, and stacked empty paint cans ten feet high to look legitimate. After being unceremoniously fired from their previous hardware chain at ages 48 and 35, Bernie Marcus and Arthur Blank took the words of their New York banker Ken Langone (who had also just accidentally caused their firings) to heart: they'd just been "kicked in the ass with a golden horseshoe.” They proceeded to author the greatest compounding story in American retail history, helped by some legendary cameos along the way from Sol Price, Jamie Dimon, and Ross Perot (to name a few). And the ending is as good as any superhero film: from its 1981 IPO to today, The Home Depot has been the single highest-returning equity in the entire US stock market — higher than Apple, Microsoft, Berkshire Hathaway, and everything else! Sponsors: Many thanks to our fantastic Fall '26 Season partners: SierraWorkOSAnthropicSentryLinks: Sign up for email updates, get our takeaways and research photos from each episode, and vote on future topics!The Official Acquired Meetup on Sept 17th with our friends at Sentry. Join us!The Acquired Home Depot Companion PDFOur Visual Artifacts page for Home DepotBuilt from Scratch by Bernie Marcus and Arthur BlankKick Up Some Dust by Bernie MarcusThe Board Wore Chicken Suits by Joe Nocera, The New York TimesFrank Blake on Invest Like the BestKen Langone's interview with Arvind NavaratnamWorldly Partners' Multi-Decade Home Depot StudyAll episode sourcesCarve Outs: Silo Season 3Tires Season 3Ratio 8 Coffee MakerTrade CoffeeQuarterbackComedianMore Acquired: Get email updates and vote on future episodes!Join the SlackCheck out the latest swag in the ACQ Merch Store!00:00:00 Start00:00:43 Intro00:05:32 Bernie Marcus's Early Career and meeting Arthur Blank (1972)00:15:58 Ken Langone & Handy Dan (1970s)00:33:08 Ken Buys Handy Dan, Bernie & Arthur Fired00:43:55 Ross Perot Almost Buys Home Depot00:51:20 Pat Farrah & The HomeCo Interlude01:05:03 First Stores & Early Model (1979)01:14:16 Home Depot Goes Public & Expands (1981)01:24:35 Home Depot's Unique Operating System01:46:01 Arthur Blank Takes CEO & Early Cracks (1997)01:56:07 The Bob Nardelli Era (2000-2007)02:12:09 Nardelli's Public Downfall & Firing (2006-2007)02:24:24 Frank Blake's Turnaround: Crisis & Culture (2007)02:42:30 E-commerce & Distribution Revolution02:59:57 Home Depot Today: Pro & DIY (2024)03:12:04 Analysis: The Paradox of Specialness03:16:18 7 Powers: Home Depot's Competitive Advantages03:19:17 Quintessence: Why It Got So Big03:26:27 Carve-Outs + Outro ‍Note: Acquired hosts and guests may hold assets discussed in this episode. This podcast is not investment advice, and is intended for informational and entertainment purposes only. You should do your own research and make your own independent decisions when considering any financial transactions.

  • #501 – DHH: Future of Programming, AI, Agentic Engineering, Vibe Coding & Linux

    26 Aug

    #501 – DHH: Future of Programming, AI, Agentic Engineering, Vibe Coding & Linux

    DHH is the creator of Ruby on Rails, Omarchy Linux, CTO of 37signals, and a racecar driver. Thank you for listening ❤ Check out our sponsors: https://lexfridman.com/sponsors/ep501-sc See below for timestamps, transcript, and to give feedback, submit questions, contact Lex, etc. Transcript: https://lexfridman.com/dhh-2-transcript CONTACT LEX: Feedback – give feedback to Lex: https://lexfridman.com/survey AMA – submit questions, videos or call-in: https://lexfridman.com/ama Hiring – join our team: https://lexfridman.com/hiring Other – other ways to get in touch: https://lexfridman.com/contact EPISODE LINKS: DHH’s X: https://x.com/dhh DHH’s Blog: https://world.hey.com/dhh Omarchy: https://omarchy.org Ruby on Rails: https://rubyonrails.org 37signals: https://37signals.com SPONSORS: To support this podcast, check out our sponsors & get discounts: Wispr Flow: AI-powered voice dictation app. Go to https://wisprflow.ai/lex Blitzy: AI agent for large enterprise codebases. Go to https://blitzy.com/lex NetSuite: Business management software. Go to http://netsuite.ai/lex Shopify: Sell stuff online. Go to https://shopify.com/lex LMNT: Zero-sugar electrolyte drink mix. Go to https://drinkLMNT.com/lex Plaud: AI-powered note-taking devices and software. Go to https://plaud.ai/lex Higgsfield AI: AI-based video generation, filmmaking, and creative studio. Go to https://higgsfield.ai Perplexity: AI-powered answer engine. Go to https://perplexity.ai/ OUTLINE: (00:00) – Introduction (01:14) – Sponsors, Comments, and Reflections (08:56) – Programming with AI agents (24:14) – How software will change (33:30) – AI impact on open source (43:21) – Building Omarchy Linux distro (53:05) – Vibe coding vs agentic engineering (1:06:06) – The end of manual programming (1:16:24) – Advice for programmers (1:28:31) – Surviving Internet Hate (1:37:46) – Programming setup for AI Agents (1:50:11) – Obsessing about speed (2:13:06) – Voice prompting vs typing (2:27:05) – Best AI coding models (2:43:55) – Best AI coding harnesses (2:56:57) – AI video generation and filmmaking (3:16:28) – Fatherhood (3:44:35) – Linux will win the desktop (3:55:51) – PewDiePie (4:05:25) – Future of programming (4:28:18) – Politics and immigration (4:59:55) – Longevity, over-optimization, and fear of death (5:11:38) – Eternal recurrence and future of human civization

  • Why Models Are AI’s Next Training Dataset with Damian Borth

    27 Jul

    Why Models Are AI’s Next Training Dataset with Damian Borth

    For more than a decade, AI has advanced by training ever-larger models on ever-larger datasets. But as high-quality training data becomes harder to find and pretraining grows increasingly expensive, researchers are looking for new ways to keep foundation models improving. In this episode, Damian Borth, professor of AI and machine learning at the University of St. Gallen, argues we’ve been overlooking an important source of knowledge: the models we’ve already trained. His group’s work on weight space learning treats trained neural networks themselves as data, learning from the distilled results of millions of GPU hours of optimization rather than starting from raw data each time. We explore what it means to build foundation models of neural networks, how knowledge can be transferred across architectures and domains, why this approach could dramatically reduce the cost of developing specialized models, and whether future AI systems may be trained on collections of existing models instead of ever-growing datasets. 🗒️  Full show notes: https://twimlai.com/go/772.

  • Jev: System One models for Prod, not God — with Diogo Almeida, CEO, TypeSafe AI

    1 day ago

    Jev: System One models for Prod, not God — with Diogo Almeida, CEO, TypeSafe AI

    Tickets for AIE NYC now open, and apply for the invite-only AIE CODE. Join us! We have an unusual relationship with today’s guest: for years since coauthoring the InstructGPT paper, Diogo Almeida had been saying that API-available frontier models have been going down the wrong path, everything from the alignment to refusals to reliability perspectives, that we have dropped every mode other than autoregressive chat-tuned LLMs because of the overwhelming success of ChatGPT. In a launch video now viewed ~40M times (by comparison, GPT4o was 22M, Fable 5 was 15M, Navier Stokes was 74M, and 6 Astra was 137M), Diogo introduced Jev and it immediately took over the AI timeline — we’ll skip full Jev explainers because your favorite AI influencer/educator has probably already done one. We also collected: * the official patterns and cookbooks you should see first, from Allie * Jev usecases * speed based - games and computer use * the voice + computer use example we discuss at 1h34 mins * voice + browser control * The must not miss Doom demo * Driving cars in games * Excalidraw * virtual try-ons * “Smart Games”/smart NPCs * guided responses in text messages * Jev for coding agents has an official guide * jev for linting * compacting tool calls * reasonable pushback from Theo - Diogo has published a note on the Tyranny of the KV Cache that you should read as a followup after the pod for Jev + coding agents, because of his belief that Cache Rules Everything * Programming Languages built atop Jev (Diogo’s fave) * Jev for analytics replay and user journey review * “dark data” * entity resolution * natural language search * “smart software” * a core goal of Jev is to “disappear into the background” - eg as unremarkable as regex * Jev as a judge * Jev memes * Jev vs LLM capabiltiies * blending transformers and classifiers * about the confidence api * Jev vs GLiNER (note difference/pushback, agreed, agreed, agreed) * Jev on trolley problem * Jev Bush Instead we’ll focus on what we can uniquely offer — a broader philosophical and mission-based understanding of how and why Jev was created, and what you should expect next in terms of future models from TypeSafe (ReasoningJev?) and what usecases and ideas you should work on vs the 55th low effort clone of Jev’s API or doing a generic JevBench benchmark - something Diogo has rejected publicly. Why RLCD: Three kinds of RLHF, and why they are ALL the wrong north star Diogo knows a good deal about RLHF, given that he was on the team that pioneered post-training at OpenAI — and traces the three branches to Christiano et al 2017 (the robot backflip demo), Stiennon et al 2020 (learning to summarize) and his baby, Ouyang et al 2022 (InstructGPT). From there on, every innovation from Function Calling to Structured Outputs to Reasoning felt like a hack on top of the string based, sequence to sequence prediction paradigm. As he mentions on the pod, from 2023-2024 he struggled unsuccessfully, due to both personal and organization underestimation, to train a model that accurately addressed what he saw as the core problem with making LLMs the heart of software: reliability. Jev’s core innovation is "Reinforcement Learning for Calibrated Decisions”, a novel, unpublished technique that optimizes for “answers with epistemically honest probabilities on System One tasks” rather than human rated feedback (RLHF) — which causes hallucinations, sycophancy, and permanent reliance on humans — or programmatically verifiable outputs with rubrics (RLVR) — which solves Navier Stokes but exacerbates jagged intelligence and doesn’t integrate well with other software. We’ve talked about the calibration problem before on the pod, but probably the single best place to understand why RLCD became necessary is Diogo’s AIE talk, which discusses why a generation of training helpful AI assistants for humans has impaired them for training models for composable, programmable AI for automation. At the end he also teases his contrarian opinion on scaling laws - which teases how to build a modern neolab without the billions of dollars the major labs have… The Bitterest Lesson: Tasks and Data beats Compute We spend a good amount of time discussing Diogo’s essay on the Bitterest Lesson: His point is that “You get what you optimize for and the bitterest lesson in ML is that the most important part of it isn’t ML at all.” - and picking the right north star, eg upvoting for user preference vs being integrated into tool calls - makes everything else fall in line. We’re excited to catch up with a freshly dyed Diogo to discuss: * Why AI can solve extraordinarily hard problems but still fail to automate basic work * What System One Models are and why Jev is built for software rather than chat * RLHF, mode collapse, calibration, and the hidden costs of optimizing for human preferences * Why refusals become a problem when AI is buried inside software dependencies * Why TypeSafe rejects public benchmarks and optimizes for intelligence per dollar * The “bitterest lesson”: why the right task and the right data can matter more than compute * Why TypeSafe thinks of itself as a data lab rather than a model lab * RLCD vs. RLHF and RLVR as fundamentally different North Stars for AI * Why reliability and robustness matter more than simple determinism * Jev’s programming primitives and how intelligence maps into software control flow * Why developers should decompose AI workflows into small, measurable decisions * How structured state replaces giant prompts and system messages * Why Diogo thinks AI should eventually disappear into the background of software * The “inverse SaaS-pocalypse” and how AI could supercharge existing software * System One vs. System Two intelligence and the limits of reasoning models * Dark data, computer use, real-time intelligence, and Jev’s biggest early use cases * Why Jev could reshape coding agents built around a single-model architecture * Why Diogo says he wouldn’t pre-train with $1 billion * The OpenAI journey that led to TypeSafe and why he thinks many neo-labs are approaching AI incorrectly * Coding agents beyond the KV cache, shared state, sub-agents, and the multi-agent future Diogo Almeida * LinkedIn: https://www.linkedin.com/in/diogomda * X: https://x.com/CompleteSkeptic * TypeSafe AI: https://typesafe.ai/ Timestamps 00:00:00 Jev Launch Week and the AI Economic Revolution 00:02:50 What Is Jev? System One Models and Programmable AI 00:05:54 RLHF, Mode Collapse, Calibration, and Yann LeCun 00:10:29 Programmatic AI, Refusals, and Safety Alignment 00:17:21 Why TypeSafe Rejects Public Benchmarks 00:20:43 The Bitterest Lesson: Data, Compute, and the Right Task 00:24:59 RLCD vs. RLHF and RLVR 00:28:42 Why Powerful AI Still Hasn’t Automated the Economy 00:39:55 Reliability, Robustness, and Determinism 00:48:11 Model Versioning, LTS, Speed, and Intelligence per Dollar 00:54:04 Inside Jev’s API and Programming Primitives 00:58:28 How to Build with Jev: Structure, Decomposition, and Small Decisions 01:18:28 The Inverse SaaS-pocalypse and AI Disappearing into Software 01:33:21 Computer Use, Dark Data, and Jev’s Biggest Use Cases 01:38:48 How Jev Could Reshape Coding Agents 01:41:00 AI Safety, Frontier Pacing, and the Limits of RLVR 01:48:03 Why Diogo Wouldn’t Pre-Train with $1 Billion 01:55:19 The OpenAI Story Behind TypeSafe 02:01:41 Why Diogo Thinks Most Neo-Labs Are Getting AI Wrong 02:08:00 Coding Agents Beyond the KV Cache and the Multi-Agent Future Transcript Introduction: Jev Launch Week and Developer Momentum Swyx [00:00:00]: Okay, we’re in the studio. A special occasion because this week, Diogo, my good buddy, launched Jev, and it’s been taking over the complete timeline. How do you feel? What’s it like to be you right now? Diogo Almeida [00:00:16]: Emotionally? Swyx [00:00:17]: Yeah. Diogo Almeida [00:00:17]: Never been worse. Like, I’m a ragged corpse of a person right now because there’s so much going on, and I’m like a technical CEO, so I have, like, a lot of fires to fight. Swyx [00:00:29]: Yeah. Diogo Almeida [00:00:29]: But mentally, I feel—I say this all the time, and I’ve been saying this kind of for years in my over-under events. Like, I feel like the entire AI field is like one of those, like, carnival house of mirrors, and everyone is just insane and saying the weirdest stuff that doesn’t make sense. And it feels like for just this week, like, I’m on a better in sync with reality and like, oh, people see it now. AI can be so much more than what was once thought. Diogo Almeida [00:01:06]: And like, yes, we are going to make. Like, an AI-based economic revolution is back on the table, and this is f*****g awesome. Diogo Almeida [00:01:17]: I’m so jazzed the developers get it. It’s, it’s, Yeah, and I want to show my eternal gratitude to the developers and Swyx [00:01:25]: Yeah. Diogo Almeida [00:01:26]: I’m so jazzed about the community and everything. It’s so great. Swyx [00:01:28]: Yeah, you were saying yesterday that you decided to prioritize the town hall and not a bunch of, like, VIP, investor-type people because you wanted to make sure that they are the people that you get your most, attention, right? The engineers, the developers. Diogo Almeida [00:01:43]: Yeah, it felt a little like, oh man, I’m talking to, like, really important people right now. Swyx [00:01:47]: Yeah. Diogo Almeida [00:01:47]: I probably shouldn’t reveal who. Swyx [00:01:48]: Yeah. Diogo Almeida [00:01:48]: But it feels a little bit dirty for me to, I’m, like, perhaps overly genuine in things. Like, it feels, like, dirty if, like, in my gigantic calendar event of people to talk to, the community isn’t one of those. Swyx [00:02:04]: Yeah. Diogo Almeida [00:02:04]: And actually, in my ideal world, it would be, like, community all the time. I was thinking, “Should I host a town hall while walking to y

  • WWDC26 Keynote

    8 Jun ·  Video

    WWDC26 Keynote

    Tune in to the WWDC26 keynote introducing Siri AI powered by Apple Intelligence — our most personal Siri update ever. You’ll also learn about expanded trust and safety features, and improvements to iOS 27, iPadOS 27, macOS 27, watchOS 27, visionOS 27, and tvOS 27.

  • Head of Claude Code: What happens after coding is solved | Boris Cherny

    19 Feb

    Head of Claude Code: What happens after coding is solved | Boris Cherny

    Boris Cherny is the creator and head of Claude Code at Anthropic. What began as a simple terminal-based prototype just a year ago has transformed the role of software engineering and is increasingly transforming all professional work. We discuss: 1. How Claude Code grew from a quick hack to 4% of public GitHub commits, with daily active users doubling last month 2. The counterintuitive product principles that drove Claude Code’s success 3. Why Boris believes coding is “solved” 4. The latent demand that shaped Claude Code and Cowork 5. Practical tips for getting the most out of Claude Code and Cowork 6. How underfunding teams and giving them unlimited tokens leads to better AI products 7. Why Boris briefly left Anthropic for Cursor, then returned after just two weeks 8. Three principles Boris shares with every new team member — Brought to you by: DX—The developer intelligence platform designed by leading researchers: https://getdx.com/lenny Sentry—Code breaks, fix it faster: https://sentry.io/lenny Metaview—The AI platform for recruiting: https://metaview.ai/lenny — Episode transcript: https://www.lennysnewsletter.com/p/head-of-claude-code-what-happens — Archive of all Lenny's Podcast transcripts: https://www.dropbox.com/scl/fo/yxi4s2w998p1gvtpu4193/AMdNPR8AOw0lMklwtnC0TrQ?rlkey=j06x0nipoti519e0xgm23zsn9&st=ahz0fj11&dl=0 — Where to find Boris Cherny: • X: https://x.com/bcherny • LinkedIn: https://www.linkedin.com/in/bcherny • Website: https://borischerny.com — Where to find Lenny: • Newsletter: https://www.lennysnewsletter.com • X: https://twitter.com/lennysan • LinkedIn: https://www.linkedin.com/in/lennyrachitsky/ — In this episode, we cover: (00:00) Introduction to Boris and Claude Code (03:45) Why Boris briefly left Anthropic for Cursor (and what brought him back) (05:35) One year of Claude Code (08:41) The origin story of Claude Code (13:29) How fast AI is transforming software development (15:01) The importance of experimentation in AI innovation (16:17) Boris’s current coding workflow (100% AI-written) (17:32) The next frontier (22:24) The downside of rapid innovation  (24:02) Principles for the Claude Code team (26:48) Why you should give engineers unlimited tokens (27:55) Will coding skills still matter in the future? (32:15) The printing press analogy for AI’s impact (36:01) Which roles will AI transform next? (40:41) Tips for succeeding in the AI era (44:37) Poll: Which roles are enjoying their jobs more with AI (46:32) The principle of latent demand in product development (51:53) How Cowork was built in just 10 days (54:04) The three layers of AI safety at Anthropic (59:35) Anxiety when AI agents aren’t working (01:02:25) Boris’s Ukrainian roots (01:03:21) Advice for building AI products (01:08:38) Pro tips for using Claude Code effectively (01:11:16) Thoughts on Codex (01:12:13) Boris’s post-AGI plans (01:14:02) Lightning round and final thoughts — References: https://www.lennysnewsletter.com/p/head-of-claude-code-what-happens — Production and marketing by https://penname.co/. For inquiries about sponsoring the podcast, email podcast@lennyrachitsky.com. — Lenny may be an investor in the companies discussed. To hear more, visit www.lennysnewsletter.com

  • Googlebooks are coming for your Mac

    1 day ago

    Googlebooks are coming for your Mac

    We tried out the new Googlebooks, which are essentially Chromebooks evolved with an Android elemental stone. They're made by Dell, Lenovo, HP, Acer, and Asus (not Google), but all have the new Googlebook OS, heavy Android phone and Gemini integration, and a built-in "Glowbar." Laptop reviewer Antonio G. Di Benedetto went hands-on with the new devices, and reports back to guest host David Imel. Further reading: ⁠iPhone owners can now submit claims in Apple’s $250 million Siri AI settlement⁠ ⁠The M5 Ultra Mac Studio tears through our benchmark tests⁠ ⁠Gemini went rogue and hacked 3 companies⁠ ⁠I got to see Google’s wild ideas about the future of laptops⁠ ⁠These are the first five Googlebook laptops⁠ ⁠Googlebooks feel like the first laptops built for Android owners⁠ ⁠The long dream of the Googlebook⁠ Subscribe to The Verge for unlimited access to theverge.com, subscriber-exclusive newsletters, and our ad-free podcast feed. We love hearing from you! Email your questions and thoughts to vergecast@theverge.com or call us at 866-VERGE11. Learn more about your ad choices. Visit podcastchoices.com/adchoices

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