AI+ Context Engineering Practitioner™ eLearning
Formerly known as AI+ Context Engineering™
Master AI+ Context Engineering Practitioner™ for Production-Grade AI Systems
- Context Strategy & Architecture: Learn how to design robust context architectures that go beyond prompts—managing instructions, memory, tools, and knowledge for reliable AI behavior across sessions and workflows.
- Building Context-Aware AI Systems: Gain hands-on skills in implementing context pipelines, RAG architecture, and memory systems that ensure grounded, accurate, and cost-efficient AI outputs.
- Context Management & Optimization: Master the Write-Select-Compress-Isolate (W-S-C-I) framework to control relevance, reduce hallucinations, optimize token usage, and scale AI systems effectively.
- Enterprise-Grade Context Integration: Learn how to integrate AI safely into enterprise environments with role-based access, compliance guardrails, secure memory, and conflict-free context orchestration.
- Future-Ready Agent & Workflow Design: Prepare for the next wave of AI by designing multi-agent systems, automated workflows, and context-driven architectures that remain reliable as models, tools, and scale evolve.
- Leer in je eigen tempo, waar en wanneer jij wilt
- Betalen op factuur, annuleren volgens heldere voorwaarden
- Ook incompany voor je hele team
Ruim 5.000 cursisten per jaar volgen een training bij ons
Voor wie
Voor wie is deze training
AI Engineers & LLM Developers: Built for practitioners who want to move beyond basic prompt engineering and design production-grade, context-aware AI systems using RAG, memory, tools, and orchestration patterns
Product Managers & AI Architects: Ideal for professionals responsible for shipping reliable AI features who need to understand context pipelines, grounding, cost control, and system-level design tradeoffs rather than toy demos
Data & Platform Engineers: For engineers working with vector databases, embeddings, retrieval systems, and AI infrastructure who want to architect scalable, efficient, and trustworthy context flows
Enterprise & Solution Architects: Designed for architects building AI systems in regulated or large-scale environments who must manage security, compliance, cost optimization, and multi-agent orchestration
AI Consultants & Technical Leaders: For professionals advising organizations on AI adoption who need a deep, practical understanding of why context—not just models—is the real differentiator in modern AI systems
Advanced No-Code / Automation Builders: A strong fit for builders using tools like n8n, Make, or Zapier who want to design reliable AI workflows and agentic systems without writing heavy infrastructure code
De training
Dit leer je tijdens de training
Praktijkgericht, met een trainer die zelf in het veld werkt. Geen theorie om de theorie.
Na deze training
Wat deze training je oplevert
- Go beyond prompts Learn to engineer instructions, tools, memory, and state so AI behaves reliably.
- Production-ready systems Build RAG + context pipelines that reduce hallucinations and improve grounding.
- Scale with efficiency Master selection + compression to control token cost, latency, and performance.
- Enterprise-safe AI Apply PII controls, role-based filtering, and conflict resolution for compliant deployments.
- Real deliverable Complete a multi-agent capstone (n8n) with routing + calculations + policy RAG.
Inhoud
Het programma
- 1.1 What is Context Engineering (Beyond Prompt Engineering)
- 1.2 From Prompting to Context Pipelines: The 2025 Paradigm Shift
- 1.3 The Four Building Blocks of Context: Instructions, Knowledge, Tools, State
- 1.4 Short-Term vs Long-Term Memory in LLM Systems
- 1.5 Benefits of Context Engineering: Grounding, Relevance, Continuity, Cost Control
- 1.6 Use Case: Context-Aware AI Travel Assistant
- 1.7 Hands-on: Designing System Instructions and Memory State for a Role-Based AI Agent
- 2.1 The W-S-C-I Framework: Write, Select, Compress, Isolate
- 2.2 WRITE Strategy: Agent Identity, Persona, Guardrails, and State
- 2.3 SELECT Strategy: Precision Retrieval & Metadata Filtering
- 2.4 COMPRESS Strategy: Summarization, Token Optimization, Auto-Compaction
- 2.5 ISOLATE Strategy: Context Boundaries, Safety, and Focus
- 2.6 Advanced Retrieval Patterns: Hybrid Search, Semantic Chunking
- 2.7 Case Study: ChatGPT & Claude Memory Systems
- 2.8 Hands-on: Implement Context Selection & Compression Using LangChain / LlamaIndex
- 3.1 The End-to-End Context Pipeline (Input → Retrieval → Compression → Assembly → Response → Update)
- 3.2 Retrieval-Augmented Generation (RAG) Architecture Deep Dive
- 3.3 Vector Databases: Pinecone, Chroma & Embedding Models
- 3.4 Grounding Failures: Hallucinations, Context Poisoning, Distraction
- 3.5 Mitigation Techniques: Rerankers, Provenance, Context Forensics
- 3.6 Case Study: Anthropic’s Multi-Agent Researcher (MAR)
- 3.7 Hands-on: Build a RAG Pipeline with Vector Search and Grounded Responses
- 4.1 Token Economy & Cost Optimization in Context Pipelines
- 4.2 Context Scaling & the Model Context Protocol (MCP)
- 4.3 Security & Compliance: PII Filtering, Redaction, Role-Based Access
- 4.4 Conflict Resolution & Context Consistency
- 4.5 Multi-Modal Context: Text, Tables, PDFs, Video Transcripts
- 4.6 Case Studies: Walmart “Ask Sam” & Morgan Stanley Knowledge Assistant
- 4.7 Hands-on: Implement Role-Based Context Filtering and Secure Retrieval
- 5.1 Translating Business Processes into AI-Ready Context Flows
- 5.2 Context Flow Diagrams (CFDs) & Automated Workflow Architecture (AWA)
- 5.3 Implementing W-S-C-I Visually Using No-Code Tools (n8n / Make / Zapier)
- 5.4 Context Templates for Consistency & Structured Outputs
- 5.5 Use Case: Dynamic Customer Onboarding Assistant
- 5.6 Case Studies: Airbnb Support Automation & HSBC SME Lending
- 5.7 Hands-on: Build a Context Flow Using No-Code Orchestration
- 6.1 Context Engineering in Regulated Domains
- 6.2 Healthcare: Clinical Decision Support & PHI Isolation
- 6.3 Finance: Market Analysis, Compliance Summarization & Tool-Based Context
- 6.4 Legal & Education: Precision Retrieval & Personalized Learning Context
- 6.5 Risk Mitigation: Context Poisoning & Context Clash
- 6.6 Advanced Agent Memory for Long-Horizon Tasks
- 6.7 Case Studies: Activeloop (Legal/IP) & Five Sigma (Insurance)
- 7.1 Why Monolithic Agents Fail: Context Explosion
- 7.2 Multi-Agent Systems (MAS) & Context Isolation
- 7.3 Agent Roles: Router, Planner, Executor
- 7.4 Agent-to-Agent Context Compression
- 7.5 Guardrails, Governance & Inter-Agent Safety
- 7.6 Ethics, Bias Mitigation & Source Traceability
- 7.7 Case Studies: IBM Watson Orchestrate & Enterprise Context Orchestrators
- 7.8 Career Pathways: Context Architect & AI Governance Roles
- 8.1 Capstone Overview: Multi-Agent Context-Aware System
- 8.2 Build: Query Router with Financial Calculations & Policy RAG (n8n)
- 8.3 Presentation, Review & Feedback
- 8.4 Final Evaluation & AI+ Context Engineering Practitioner™ Certification
- LangChain and LangGraph
- LlamaIndex
- Vector Databases (Pinecone, Chroma)
- n8n, Zapier, Make.com
- Embedding Models and RAG Pipelines
- No-Code Automation Platforms
- Enterprise Data and API Integrations
Praktisch
Goed om te weten
Lesmethode
Kenmerken
Online proctored exam included, with one free retake.
Exam format: 50 questions, 70% passing, 90 minutes, online proctored exam
Access to all materials and exams is provided for 365 days after delivery.
Voorkennis
- A solid foundation in AI and machine learning concepts, proficiency in programming and data handling, familiarity with cloud platforms and IoT environments, and the ability to design, manage, and optimize contextual data, memory, and tool orchestration are essential for this course.
Inschrijven
Alles op een rij
AI+ Context Engineering Practitioner™ eLearning
- Betalen op factuur mogelijk
- Verschuiven of annuleren volgens onze voorwaarden
- Ook incompany voor je hele team via maatwerk
Zekerheid
Inschrijven zonder verrassingen
Heldere voorwaarden
Verschuiven of annuleren doe je volgens onze algemene voorwaarden. Geen kleine lettertjes achteraf.
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