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Duration 14 hours
Course Outline
Foundations of AI-Driven Test Engineering
- Contemporary testing challenges and the strategic role of AI
- Principles and terminology of generative testing
- Machine learning models applied to automated test creation
Converting Requirements and Code into AI-Generated Tests
- Extracting intent from requirements and user stories
- Generating structured test cases using language models
- Ensuring determinism and reproducibility in AI-generated tests
Automated Unit Test Generation
- Creating unit tests from source code context
- Generating input permutations and edge cases
- Integrating generated tests with standard unit testing frameworks
AI-Assisted Integration and End-to-End Test Creation
- Mapping system behavior to test flows
- Constructing integration paths through AI-driven analysis
- Balancing human oversight with automated generation
Coverage Prediction and Risk Modeling
- Identifying under-tested code regions using ML models
- Forecasting high-risk areas based on historical failure data
- Prioritizing tests using coverage and risk predictions
Applying AI-Based Test Intelligence in CI/CD
- Embedding AI analysis steps into pipelines
- Triggering dynamic test selection based on risk scores
- Maintaining a feedback loop for continuously improved predictions
Validation, Governance, and Quality Assurance
- Evaluating the reliability of AI-generated tests
- Managing bias and avoiding false positives
- Establishing guardrails for production use
Scaling AI-Powered Test Generation Across Teams
- Adoption strategies for QA and DevOps organizations
- Standardizing workflows and documentation
- Driving continuous improvement with metrics and insights
Summary and Next Steps
Requirements
- A solid grasp of software testing methodologies.
- Hands-on experience with automated testing frameworks.
- Knowledge of programming concepts and CI/CD pipelines.
Intended Audience
- QA Engineers
- SDETs
- DevOps teams with testing responsibilities