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Hello, I'm Prajwal Anagani

Deep Learning Engineer • Computer Vision Researcher • Applied Scientist

I work across the full ML stack — model design, training, large-scale data pipelines, and high-performance deployment. My primary focus is applied deep learning and computer vision, especially building systems that operate reliably in production.

I enjoy converting state-of-the-art research into robust, optimized systems used in real products.


What I Work On

Deep Learning & Computer Vision

  • Vision Transformers, MoE architectures, DINOv3, SigLIP, YOLOv8-SegX, EfficientNet
  • Multi-camera retail perception, SKU detection, segmentation pipelines
  • Retrieval-based OOD detection, custom GPU kernels, flash-attention optimizations
  • Training workflows: PyTorch, PyTorch-Lightning, FastAI, TensorFlow

MLOps & Deployment

  • Triton Inference Server (Python backends and custom CUDA ops)
  • High-throughput data loading, preprocessing, and augmentation pipelines
  • Azure ML Studio, Docker, GitHub Actions, DVC, LanceDB, FiftyOne

Open Source Contributions

  • Contributed to HuggingFace Transformers

    • Improvements around ViT-MoE (issues/PRs #40145, #40215) and model behavior
  • Active in computer vision and training-efficiency communities


About Me

  • Deep learning engineer at RadiusAI
  • Previously co-founded/worked at a Berkeley SkyDeck–incubated startup
  • Interested in large-scale vision systems, inference optimization, and agentic workflows
  • Passionate about ML theory, mathematics, and building simple systems that scale

Connect

LinkedIn: https://www.linkedin.com/in/prajwal-anagani-a8401a191/ Website: https://lawjarp.is-a.dev/


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