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Duration 7 hours
Course Outline
Introduction to AI in Requirements Engineering
- Overview of AI tools available to product teams
- Understanding the significance of requirements within Agile and Scrum
- Advantages and constraints of utilizing AI for requirement capture
Collecting and Organizing Requirements Using AI
- Simulating interviews with AI to convert verbal input into formal requirements
- Applying prompting techniques to clarify vague statements
- Structuring requirements into distinct themes and features
Creating User Stories and Epics
- Converting plain text into actionable user stories
- Utilizing AI to pinpoint actors, actions, and objectives
- Building epics and story hierarchies based on AI suggestions
Drafting Acceptance Criteria and Edge Cases
- Producing Given-When-Then testable criteria
- Using AI to detect exception paths and boundary conditions
- Evaluating AI-generated outputs for clarity and completeness
Refining and Grooming Stories with AI
- Condensing notes and summaries from stakeholder meetings
- Splitting and merging stories using prompt-based guidance
- Streamlining backlog refinement processes with AI support
Collaboration and Knowledge Transfer
- Disseminating AI-generated stories to developers
- Maintaining traceability from features to test cases
- Creating documentation for stakeholder approval
Conclusion and Future Directions
Requirements
- Foundational knowledge of software project lifecycles
- Familiarity with Agile or Scrum methodologies
- No prior technical background is necessary
Target Audience
- Product owners
- Business analysts
- Scrum masters
Testimonials (1)
That i gained a knowledge regarding streamlit library from python and for sure i'll try to use it to improve applications in my team which are made in R shiny