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 Duration 14 hours

Course Outline

Introduction to AI in Software Testing

  • An overview of AI capabilities within testing and QA domains.
  • Identification of AI tools prevalent in contemporary test workflows.
  • An examination of the benefits and potential risks associated with AI-driven quality engineering.

Utilizing LLMs for Test Case Generation

  • Applying prompt engineering to generate unit and functional tests.
  • Developing parameterized and data-driven test templates.
  • Translating user stories and requirements into executable test scripts.

AI in Exploratory and Edge Case Testing

  • Detecting untested branches or conditions with the aid of AI.
  • Simulating rare or abnormal usage scenarios to stress test applications.
  • Implementing risk-based strategies for test generation.

Automated UI and Regression Testing

  • Employing AI tools such as Testim or mabl for the creation of UI tests.
  • Ensuring stability in UI tests through the use of self-healing selectors.
  • Conducting AI-based regression impact analysis following code modifications.

Failure Analysis and Test Optimization

  • Clustering test failures using LLM or ML models for better analysis.
  • Mitigating flaky test runs and reducing alert fatigue.
  • Prioritizing test execution based on historical data insights.

CI/CD Pipeline Integration

  • Integrating AI test generation into Jenkins, GitHub Actions, or GitLab CI.
  • Verifying test quality during the pull request process.
  • Implementing automation rollbacks and smart test gating within pipelines.

Future Trends and Responsible Use of AI in QA

  • Assessing the accuracy and safety of AI-generated tests.
  • Establishing governance and audit trails for AI-enhanced test processes.
  • Exploring trends in AI-QA platforms and intelligent observability.

Summary and Next Steps

Requirements

  • Practical experience in software testing, test planning, or QA automation.
  • Proficiency with popular testing frameworks such as JUnit, PyTest, or Selenium.
  • A foundational understanding of CI/CD pipelines and DevOps environments.

Intended Audience

  • QA Engineers.
  • Software Development Engineers in Test (SDETs).
  • Software testers operating within Agile or DevOps contexts.

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