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Learning Path · Step 13 · UX AI Creator

UX Context Engineering and RAG

In this training, participants will learn how to use any UX documents and texts (e.g., interview transcripts) as data sources thanks to Retrieval Augmented Generation (RAG) to answer natural language user questions. Additionally, participants will learn how to structure the AI pipeline and source documents to ensure the RAG approach delivers the most accurate results possible. The limitations of RAG and suitable alternatives in Context Engineering (Knowledge Graphs and meta-prompting) will also be examined.

Who is this training for?

Interested parties with prior knowledge of Prompt Engineering and GenAI.

Why this training

Participants should learn what distinguishes normal prompting from RAG prompting, what a context window limitation causes, and why the way source documents are structured or post-processed is therefore crucial to achieving good results. This will empower participants to become "discerning" consumers of their own knowledge sources and enable them to informatively initiate the deployment, use, and optimization of these sources for other colleagues.

Contents

  • Introduction to Prompt Engineering
  • Introduction to the limitations of simple prompting
  • Introduction to Retrieval Augmented Generation
  • Presentation of optimization possibilities for knowledge sources
  • Introduction to Context Engineering and Meta-Prompting
  • Practical examples and exercises on UX-specific RAG prompts (e.g., finding specific text passages from a large number of interview transcripts)

Methodology

  • Alternating between theory, demonstration, and practical sections
  • Practical sections alternate between individual and group tasks
  • Online workshop in FigJam
  • Use of the training tools mentioned in the prerequisites for the direct application of knowledge during and after the training

At a glance

Format
Live-Online-Workshop
Duration
8 h (2x4h)
Group
6–12 pers.
Level
Advanced
Audience
UX AI Creator
Price
On request

No obligation - we reply within 24 hours.

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