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AI TRAINING

AI Deep Learning Program

The AI Deep Learning Program is a 12-week itinerary split across 6 half-day workshops. Move your team from Stage 2 to Stage 4 on the Improving AI Adoption Model — crossing the Autonomy Inflection Point from permission-based AI usage to autonomous workflow integration with embedded coaching.

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Badge - AI Deep Learning Program v2
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AI Deep Learning Program Full Description

Two Phases, Measured Maturity Growth

  • 12-Week Program

  • 6 Half-Day Workshops

  • Maturity Stages 2-4

  • 1:1 Embedded AI Coach

WEEKS 1–6 · SESSIONS 1–3 · STAGE 2 → 3

Foundations: Product, Coding & Testing

Cross the Autonomy Inflection Point. Prompt engineering fundamentals, AI-assisted product elicitation, coding with AI assistants for generation and refactoring, and TDD with AIgenerated assertions. Teams shift from permission-based AI to task-level autonomy.

WEEKS 7–12 · SESSIONS 4–6 · STAGE 3 → 4

Advanced: Product, Coding & Testing

Build cross-system workflow capability. Agentic product workflows with MCP integration, chaining reusable skills and automation pipelines, AI-powered validation including browser testing, IaC automation, and governance agents. Teams operate as reviewers directing AI output.

Delivery Model

  • Track Lead: Senior trainer-coach who delivers half-day workshops and coordinates execution across your team's learning journey.

  • Embedded AI Engineer: A dedicated coach working alongside your team daily — building habits, applying concepts in real work, and extracting reusable workflows.

Improving AI Adoption Model

  • STAGE 2 - PERMISSIONS: Human does the work. AI assists with permission.

    • ROLE: DOER

  • STAGE 3 - TASK: Autonomy emerges. AI acts on single tasks independently.

    • INFLECTION POINT

  • STAGE 4 - WORKFLOW: AI drafts across systems. Human reviews output.

    • ROLE: REVIEWER

*WAVE TRANSITION - From Wave 1: Chatbots (permission-based, human does the work) to Wave 2: Insights (autonomy emerges, human reviews output).

Learning Outcomes

  • Prompt engineering mastery — the foundational skill for every maturity stage

  • AI assistants integrated into coding, testing, and deployment workflows

  • Ability to build and chain agents for autonomous task execution (Stage 3)

  • Cross-system workflow automation with reusable skills (Stage 4)

  • Governance habits for safe autonomous operations beyond permissions

  • A 90-day framework to sustain maturity growth toward Stage 5+

*Crossing the Autonomy Inflection Point: At Stage 2, your team uses AI with full permission controls — slow but safe. The jump to Stage 3+ requires turning permissions off, demanding new skills, governance, and trust. Tooling alone yields only 18–25% gains. Without embedded coaching, less than 45% adopt and stall at Stage 2. The DLP builds the habits to cross this threshold safely.

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