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RAG ATTACK: Enter the Era of Agentic RAGs – A Training Program OnePoint x SCAI
03
Dec
2025
09:00
18:00
RAG ATTACK: Step into the Era of Agentic RAGs
GENERATIVE AI
An advanced training program co-designed with Sorbonne University: learn how AI agents can orchestrate complex RAG pipelines, and explore the tools and cloud platforms to deploy your solutions at scale.
Objectives
- Understand the foundations and limitations of RAG (Retrieval-Augmented Generation) systems.
- Discover the concept of agentic RAGs, at the intersection of retrieval, generation, and autonomous planning.
- Implement a RAG pipeline powered by agents.
- Identify real-world use cases and explore the tools to build and deploy these architectures.
Program
MORNING – RAG Systems (Led by One Point)
9:00–9:15 AM: Welcome coffee
9:15–10:45 AM: Lecture – Fundamentals of RAG
Theoretical content:
- Context and historical evolution of RAG
- Technical fundamentals: embeddings, prompts, LLMs
- Architecture of a RAG pipeline: chunking, vector database, retrieval
- Performance optimization and current limitations
15-minute break
11:00 AM–12:30 PM: Hands-on Workshop – Building a RAG System
Progressive practical exercises:
1.Exploring VéloCorp data
- Exploration of the document corpus (catalogs, manuals, policies)
- Structure analysis and identification of use cases
2. Building a local vector database (FAISS)
- Chunking: intelligent document segmentation and experimentation with chunk sizes
- Embedding: vector transformation, model comparison
- Indexing and local persistence
3. Optimizing Retrieval
- Cosine similarity search techniques
- Prompt impact: simple vs enriched queries
- Ranking and re-ranking strategies
4. Scaling up with Azure Cognitive Search
- Migration to a professional cloud solution
- Index and analyzer configuration
12:30–1:30 PM: Lunch break (free)
AFTERNOON – Agentic AI (Led by SCAI)
1:30–3:00 PM: Lecture – Fundamentals of Agentic AI
Theoretical content:
- Agent context: transformation brought by LLM-based agents and main components
- Main agentic architectures
- Deployment and security
- Future perspectives and evolutions
15-minute break
3:15–4:45 PM: Hands-on Workshop – Building Intelligent Agents
Practical exercises with increasing levels of complexity:
Level 1 – Simple Agent
Automatically querying the appropriate source based on the question
Level 2 – ReAct Agent
Reasoning before acting
Level 3 – Multi-tool Orchestration
Combining multiple sources for complex analyses
Level 4 – Hierarchical Planning
Decomposing and executing complex tasks
4:45–5:00 PM: Wrap-up and Outlook
- Feedback session
- Concrete applications in your professional projects
- Q&A
Target Audience
AI engineers, data scientists, and developers.
Prerequisites
Basic knowledge of Python, APIs, and large language models (LLMs).
Assessment Methods
Hands-on exercises and case studies are integrated throughout the course to validate learners' understanding.
Teaching Methods and Resources
This concept-driven course combines instructional content with practical exercises, workshops, and case studies for an applied learning experience.
To apply :
- https://fc.sorbonne-universite.fr/nos-offres/rag-attack-entrez-dans-lere-des-rag-agentiques/
- https://ecole.groupeonepoint.com/product/formation-intelligence-artificielle-rag-attack-entrez-dans-l-ere-des-rag-agentiques