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Beginnt 4 June 2026 17:26

Endet 4 June 2026

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Safe Evaluation and Rollout of AI Models

USENIX via YouTube

USENIX

6076 Kurse


38 minutes

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Übersicht

Lehrplan

  • Introduction to Safe AI Deployment
  • Overview of AI model deployment challenges
    Importance of safety and reliability in AI systems
    Key concepts: regressions, fixes, rollbacks
  • Measuring AI Model Performance
  • Setting performance benchmarks
    Evaluation metrics: precision, recall, F1-score, etc.
    Handling diverse user inputs and edge cases
  • Methods for Safe Evaluation
  • A/B testing and controlled rollouts
    Shadow testing and canary releases
    Monitoring and alert systems
  • Regression Detection and Management
  • Automated regression testing approaches
    Root cause analysis for regressions
    Strategies for quick rollback and mitigation
  • Tools and Frameworks
  • Overview of existing tools for model evaluation and monitoring
    Best practices for integrating these tools into production pipelines
  • Case Studies
  • Real-world examples of effective AI model rollouts
    Lessons learned from deployment failures and corrective measures
  • Future Trends in AI Model Deployment
  • Advances in deployment automation
    Evolving best practices with emerging technologies
  • Conclusion and Final Project
  • Summary of key learnings
    Project: Design a safe deployment plan for an AI model using acquired knowledge.

Fachgebiete

Computer Science