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Course Outline

Foundations of Privacy-Preserving AI

  • Essential principles of data privacy within mobile applications
  • Regulatory factors driving the adoption of on-device AI
  • Advantages and constraints of local data processing

Exploring Nano Banana for On-Device Privacy

  • Architectural overview of the Nano Banana model
  • Security features and local execution mechanisms
  • Compatible platforms and mobile integration strategies

Data Management and Local Processing Methods

  • Secure collection and storage of sensitive data on the device
  • Reducing data exposure through local inference
  • Implementation of anonymization and pseudonymization techniques

Building Privacy-Preserving AI Features

  • Developing AI-driven functionalities without transmitting user data externally
  • Designing workflows suitable for healthcare, finance, or compliance-critical sectors
  • Ensuring data isolation across various application components

Security Aspects for On-Device Models

  • Safeguarding models against extraction or tampering
  • Secure sandboxing and effective permission management
  • Conducting threat modeling for mobile AI systems

Compliance and Regulatory Alignment

  • Navigating GDPR, HIPAA, and financial sector regulatory impacts
  • Documenting privacy-by-design methodologies
  • Maintaining audit trails without compromising user data security

Testing and Verifying Privacy Guarantees

  • Testing workflows to identify potential data leaks
  • Assessing the balance between model accuracy and privacy
  • Performing continuous validation throughout application updates

Deploying and Maintaining Privacy-Centric AI Apps

  • Overseeing on-device model updates
  • Monitoring performance and compliance standards over time
  • Preparing applications for future regulatory changes

Conclusion and Recommended Next Steps

Requirements

  • Familiarity with mobile or application development practices
  • Proficiency in Python, Kotlin, or Swift
  • Foundational knowledge of AI or machine learning concepts

Target Audience

  • Enterprise technical teams
  • Compliance and governance officers
  • Developers responsible for building applications handling sensitive information
 14 Hours

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