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Duration 14 hours
Course Outline
Basics of AI-Enhanced Deployment Workflows
- The role of AI in advancing modern deployment practices
- Introduction to predictive deployment models
- Core concepts: drift, anomaly signals, and rollback triggers
Constructing Intelligent Deployment Pipelines
- Embedding AI components within existing CI/CD systems
- Data prerequisites for robust decision models
- Strategies for pipeline instrumentation
Risk Forecasting and Pre-Deployment Evaluation
- Assessing release readiness using machine learning
- Developing scoring models for deployment risk
- Leveraging historical data for improved rollout planning
AI-Managed Rollout Strategies
- Automating the selection of blue/green and canary releases
- Dynamically adjusting rollout velocity
- Performing real-time risk scoring during deployment
Automated Rollback and Resilience Methods
- Understanding rollback triggers and thresholds
- Identifying anomalies via metrics and logs
- Orchestrating rollbacks across distributed systems
Observability for AI-Driven Orchestration
- Gathering deployment telemetry to enhance model accuracy
- Designing efficient monitoring pipelines
- Correlating signals to optimize decision automation
Governance, Compliance, and Safety Protocols
- Maintaining auditability of AI-driven deployment actions
- Overseeing risk acceptance and approval policies
- Establishing trust mechanisms for automated decisions
Scaling AI-Orchestrated Deployments
- Architectures for multi-environment orchestration
- Integrating edge, cloud, and hybrid deployment environments
- Performance considerations for large-scale rollouts
Wrap-Up and Future Actions
Requirements
- Comprehension of CI/CD pipelines
- Proficiency with cloud-native deployment workflows
- Knowledge of containerization and microservices
Target Audience
- DevOps engineers
- Release managers
- Site reliability engineers (SREs)