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Duration 14 hours
Course Outline
Foundations of AI-Enhanced Release Control
- Comprehending feature flags and progressive delivery
- Key concepts in canary testing and staged exposure
- The role of AI in enhancing release workflows
Machine Learning Techniques for Rollout Decisions
- Establishing baselines for system and user behavior
- Implementing anomaly detection for early warning signals
- Considerations for training data and feedback loops
Designing AI-Driven Feature Flag Strategies
- Creating dynamic flag rules guided by AI signals
- Setting exposure thresholds and automated score gates
- Logic for adaptive increases, pauses, or rollbacks
AI-Assisted Canary Analysis
- Assessing performance differences between canary and baseline groups
- Weighting metrics to generate AI-based risk scores
- Activating automated decision pathways
Integrating AI Models into Release Pipelines
- Incorporating AI checks into CI/CD stages
- Linking feature flag systems with ML engines
- Managing pipelines for hybrid automated and manual workflows
Monitoring and Observability for AI Decision-Making
- Identifying signals necessary for reliable AI inference
- Gathering performance, crash, and behavioral telemetry
- Implementing continuous learning loops
Risk Management and Operational Governance
- Ensuring responsible automation in release decisions
- Defining conditions for human review and override points
- Auditing AI-driven rollout actions
Scaling AI-Based Rollout Strategies Across Products
- Frameworks for multi-team governance
- Standardization of reusable ML components and models
- Normalization of cross-product telemetry
Summary and Next Steps
Requirements
- A solid understanding of CI/CD workflows
- Practical experience with feature flag usage or deployment pipelines
- Familiarity with fundamental statistical or performance monitoring concepts
Target Audience
- Product Engineers
- DevOps Professionals
- Release Engineers and Technical Leads