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Architect a 90-Day AI Upskilling Program For Your Team

January 2026
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Session Resources + Prompts Doc + Transcript

Summary

Creating a 90-day AI upskilling program is essential for managers aiming to enhance their team's AI capabilities efficiently. The session explored why AI upskilling is a strategic business priority, how to design a 90-day program, and the role of generative AI in speeding up program development. Key themes included defining strategic AI visions, developing role-specific learning paths, and measuring success beyond completion rates. The session also highlighted engagement strategies to maintain progress and the importance of aligning programs with business outcomes.

Key Takeaways:

  • AI upskilling is a strategic business initiative, not merely an L&D task.
  • A 90-day program builds real capability and lays the foundation for long-term success.
  • Role-specific learning paths are essential for effective AI training.
  • Generative AI can speed up the design and execution of upskilling programs.
  • Success metrics should focus on behavior change and business impact, not just completion rates.

In-Depth Insights

Why AI Upskilling Matters

AI upskilling is becoming a strategic priority as AI adoption accelerates across organizations. Employees are experimenting with AI tools like ChatGPT, and leaders are pressured to move quickly while staying compliant ...
Leer Mas

. AI upskilling is not merely an L&D initiative but a business strategy. Successful programs align AI skills with business outcomes such as innovation, faster decision-making, and accurate forecasting. As Nerupa Kidnapillai noted, "AI adoption is already happening inside your organizations, whether you've planned for it or not."

Designing a 90-Day AI Upskilling Program

A 90-day timeframe is optimal for moving from awareness to real capability, allowing participants to practice and apply AI skills meaningfully. The program should start with a soft launch to gather feedback and create internal advocates, followed by a hard launch at a wider scale. The focus should be on creating a shared language and building role-specific skills. "Ninety days gives you enough time to move from awareness into real capability," Nerupa emphasized.

Role-Based Learning Paths

Not everyone needs to build AI models, but everyone should work intelligently alongside AI. Developing role-specific learning paths ensures that training is relevant and impactful. DataCamp's framework identifies four key personas: business leaders, citizen AI practitioners, AI practitioners, and AI experts. Each group requires different skills and outcomes. "Treating everyone the same is the fastest way to kill adoption," Nerupa warned.

Measuring Success and Engagement

Success should be measured beyond completion rates, focusing on behavior change and business impact. The Kirkpatrick model helps track progress from engagement to business outcomes. Engagement strategies include gamification, visibility, and leadership advocacy. "Engagement doesn't come from more content; it comes from more visibility, relevance, and leadership advocacy," Nerupa explained. Celebrating progress and capturing learner stories also help maintain progress.


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