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Duration 14 hours
Course Outline
Introduction to AI in DevOps
- Defining AI for DevOps
- Real-world use cases and benefits of AI within CI/CD pipelines
- Survey of tools and platforms that enable AI-driven automation
AI-Assisted Code Development and Review
- Leveraging GitHub Copilot and comparable tools for code completion
- AI-based code quality verification and recommendations
- Automated test generation and vulnerability detection
Intelligent CI/CD Pipeline Design
- Configuring Jenkins or GitHub Actions with AI-enhanced stages
- Predictive build triggering and intelligent rollback detection
- Dynamic pipeline adaptation based on historical performance data
AI-Powered Testing Automation
- AI-driven test generation and prioritization (e.g., Testim, mabl)
- Regression test analysis utilizing machine learning
- Mitigating flakiness and reducing test runtime via data-driven insights
Static and Dynamic Analysis with AI
- Integrating SonarQube and similar tools into pipelines
- Automated identification of code smells and refactoring guidance
- Impact analysis and code risk profiling
Monitoring, Feedback, and Continuous Improvement
- AI-powered observability solutions and anomaly detection
- Utilizing ML models to derive insights from deployment outcomes
- Establishing automated feedback loops across the SDLC
Case Studies and Practical Integration
- Examples of AI-enhanced CI/CD in enterprise settings
- Integration with cloud-native platforms and microservices
- Addressing challenges, recommendations, and best practices
Summary and Next Steps
Requirements
- Practical experience with DevOps and CI/CD workflows
- Foundational knowledge of version control and automation tooling
- Familiarity with software testing and deployment principles
Target Audience
- DevOps engineers and platform teams
- QA automation leads and test engineers
- Software architects and release managers