Kenfil Hong Kong Limited

Advanced Generative AI Development on AWS

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  • Certificate Available

Course Information

Schedules
  • 24 Jun 2026 (Wed) - 26 Jun 2026 (Fri) 9:30 AM - 5:00 PM
  • 27 Jul 2026 (Mon) - 29 Jul 2026 (Wed) 9:30 AM - 5:00 PM
Registration period
22 Jun 2026 (Mon) - 26 Jul 2026 (Sun)
Price
HKD 9,000
(Early Bird HK9000
Standard HK18000)
Course Level
Study Mode
Duration
3 Day(s)
Language
Cantonese
Location
2/F, Centre Point, 181 Gloucester Road, Wanchai, HK
Certificate
  • Available
  • *The delivery and distribution of the certificate are subject to the policies and arrangements of the course provider.

Course Overview

Course description

The Advanced Generative AI Development on AWS is designed for developers seeking to master the implementation of production-ready generative AI solutions on AWS. The course addresses the needs of organizations embarking on their generative AI journey and how to build comprehensive generative AI strategies that align with broader business objectives. This advanced 3-day instructor-led training builds expertise across the entire generative AI stack - from foundation models to enterprise integration patterns. In addition, you will learn about advanced data processing techniques, vector database implementation and retrieval augmentation, sophisticated prompt engineering and governance, agentic AI systems and tool integration, AI safety and security measures, performance optimization and cost management strategies, comprehensive monitoring and observability solutions, testing and validation frameworks. The course structure follows AWS's proven model for generative AI adoption, progressing from experimentation to production-ready implementations.

  • • Course level: Advanced
  • • Duration: 3 day

Activities

  • This course includes presentations, hands-on labs, demonstrations, and group exercises.

What You’ll Learn

Day 1
Module 1: Foundation Model Selection and Configuration

  • • Enterprise foundation model evaluation framework
  • • Dynamic model selection architecture patterns
  • • Resilient foundation model system designs
  • • Cost optimization and economic modeling

Module 2: Advanced Data Processing for Foundation Models

  • • Comprehensive data validation and quality assurance
  • • Multi-modal data processing pipelines
  • • Input optimization and performance enhancement

Module 3: Vector Databases and Retrieval Augmentation

  • • Enterprise vector database architecture
  • • Advanced document processing and chunking strategies
  • • Sophisticated retrieval system implementation
  • • Hands-on Lab: Develop Retrieval Augmented Generation (RAG) Applications with Amazon
  • Bedrock Knowledge Bases

Day 2
Module 4: Prompt Engineering and Governance

  • • Advanced prompt engineering frameworks
  • • Complex prompt orchestration systems
  • • Enterprise prompt governance and management
  • • Hands-on Lab: Develop conversation pattern with Amazon Bedrock APIs

Module 5: Implementing Agentic AI Frameworks with Amazon Bedrock AgentCore

  • • Agentic AI Frameworks
  • • Amazon Bedrock AgentCore

Module 6: AI Safety and Security

  • • Comprehensive content safety implementation
  • • Privacy-preserving AI architecture
  • • AI governance and compliance frameworks

Day 3
Module 7: Performance Optimization and Cost Management

  • • Token efficiency and cost optimization
  • • High-performance system architecture
  • • Intelligent caching systems implementation
  • • Hands-on Lab: Building Secure and Responsible Gen AI with Guardrails for Amazon Bedrock

Module 8: Monitoring and Observability for Generative AI

  • • Foundation model monitoring systems
  • • Business impact and value management
  • • AI-specific troubleshooting and diagnostics

Module 9: Testing, Validation, and Continuous Improvement

  • • Comprehensive AI evaluation frameworks
  • • Quality assurance and continuous improvement
  • • RAG system evaluation and optimization

Module 10: Enterprise Integration Patterns

  • • Enterprise connectivity and integration architecture
  • • Secure access and identity management
  • • Cross-environment and hybrid deployments

Module 11: Course wrap-up

  • • Next steps and additional resources
  • • Course summar


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