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Course Outline

Block 1 — Shared Foundations (Days 1–2)

Day 1 — Morning: The Human Factor in AI Adoption
• Trust and reliance calibration: determining when to use AI and when to stop. • Team agreement structure: trigger, action, evidence, owner. • Prompt Curator role: validation, decision-making, sign-off, and AI incident response planning.

Day 1 — Afternoon: Constraints, Risks and Compliance
• Real LLM capabilities and prompt risk vectors: injection, data leakage, hallucinations. • Legal framework: GDPR, EU AI Act, and sector standards (DICOM, HL7, HIPAA). • Practical exercise: translating a domain standard into a prompt guardrail.

Day 2 — Morning: Technical Architecture of Prompts
• Agent architecture from a prompt design perspective: memory, context, goals. • API integration and domain data sources, multi-agent systems, and prompt chaining.

Day 2 — Afternoon: Enterprise Prompt Anatomy
• The six layers: Role, Context, Constraints, Domain Standards, Format, Examples. • Prompt hierarchy: System (org-wide), Domain (team), Task (individual). • Demo: deconstructing a naive prompt and rebuilding it. Team briefing for Days 3–5.

Block 2 — Co-Construction Workshops (Days 3–4–5)

Day 3 — Discovery and Standards Audit

  • Parallel team workshops: Architects, Domain-Specific Devs, Back-End, QA.
  • Mapping enterprise standards and constraints to identify cross-team conflicts.
  • Day 3 Deliverable: Standards Map + impact/effort priority matrix.

Day 4 — Convention Design and Template Construction

  • Naming conventions, versioning, and tag system (team, domain, target tool).
  • Building first validated templates: TypeScript DICOM, code review, QA tests, API documentation.
  • Day 4 Deliverable: 4+ operational templates + conventions guide.

Day 5 — Library Assembly, Governance and Official Handover

  • Library organization and integration with GitHub Copilot, Cursor, or internal LLM APIs.
  • Prompt Curator role, quality metrics, team rituals, and 30-day deployment plan.
  • Final Day 5 Deliverable: Documented Library v1.0 + Governance Charter + 30-Day Plan.

Requirements

  • Completion of at least one AI training course (introductory or advanced).
  • Technical profiles: development experience within the company's stack.
  • Management profiles: basic familiarity with AI tools such as ChatGPT, Copilot, etc.
  • Company commitment: active participation of team leaders on Days 3–5.
  • Prior provision: existing standards documentation (README files, coding guides).

Target audience:

  • Software architects
  • Developers (domain-specific, back-end, front-end)
  • QA engineers and code technicians
  • Team leaders and middle managers
  • IT managers, decision-makers, and AI project leads
 35 Hours

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