Course Duration
2 Days

Databricks
Authorized Training

IT

Course cost:
£1,560

IT Certification Overview

This course is aimed at data scientists, machine learning engineers, and other data practitioners who want to build generative AI applications using the latest and most popular frameworks and Databricks capabilities.

Below, we describe each of the four, four-hour modules included in this course.

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Prerequisites

Participants should have:

  • Familiarity with natural language processing concepts.
  • Understanding of prompt engineering and best practices.
  • Experience with the Databricks Data Intelligence Platform.
  • Knowledge of RAG concepts, including data preparation, embedding, vectors, and vector databases.
  • Experience in building LLM applications using multi-stage reasoning LLM chains and agents.
  • Familiarity with Databricks tools for AI evaluation and governance.

Target Audience

This course is intended for:

  • Data scientists and machine learning engineers developing AI-driven applications.
  • AI practitioners looking to enhance their skills in generative AI with Databricks.
  • Organisations seeking to deploy and govern large-scale AI applications effectively.

Learning Objectives

Generative AI Solution Development: This is your introduction to contextual generative AI solutions using the retrieval-augmented generation (RAG) method. First, you’ll be introduced to RAG architecture and the significance of contextual information using Mosaic AI Playground. Next, we’ll show you how to prepare data for generative AI solutions and connect this process with building a RAG architecture. Finally, you’ll explore concepts related to context embedding, vectors, vector databases, and the utilization of Mosaic AI Vector Search.

Generative AI Application Development: Ready for information and practical experience in building advanced LLM applications using multi-stage reasoning LLM chains and agents? In this module, you'll first learn how to decompose a problem into its components and select the most suitable model for each step to enhance business use cases. Following this, we’ll show you how to construct a multi-stage reasoning chain utilizing LangChain and HuggingFace transformers. Finally, you’ll be introduced to agents and will design an autonomous agent using generative models on Databricks.

Generative AI Application Evaluation and Governance: This is your introduction to evaluating and governing generative AI systems. First, you’ll explore the meaning behind and motivation for building evaluation and governance/security systems. Next, we’ll connect evaluation and governance systems to the Databricks Data Intelligence Platform. Third, we’ll teach you about a variety of evaluation techniques for specific components and types of applications. Finally, the course will conclude with an analysis of evaluating entire AI systems with respect to performance and cost.

Generative AI Application Deployment and Monitoring: Ready to learn how to deploy, operationalize, and monitor generative deploying, operationalizing, and monitoring generative AI applications? This module will help you gain skills in the deployment of generative AI applications using tools like Model Serving. We’ll also cover how to operationalize generative AI applications following best practices and recommended architectures. Finally, we’ll discuss the idea of monitoring generative AI applications and their components using Lakehouse Monitoring.

Gen AI Engineering with Databricks Course Content

Generative AI Solution Development

  • Introduction to RAG
  • Preparing Data for RAG Solutions
  • Vector Search
  • Assembling and Evaluating a RAG Application

Generative AI Application Development

  • Foundations of Compound AI Systems
  • Building Multi-Stage Reasoning Chains
  • Agents and Cognitive Architectures

Generative AI Application Evaluation and Governance

  • Importance of Evaluating GenAI Applications
  • Securing and Governing GenAI Applications
  • GenAI Evaluation Techniques
  • End-to-end Application Evaluation

Generative AI Application Deployment and Monitoring

  • Model Deployment Fundamentals
  • Batch Deployment
  • Real-Time Deployment
  • AI System Monitoring
  • LLMOps Concepts

Gen AI Engineering with Databricks Dates

Next 4 available training dates for this course

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VIRTUAL

QA On-Line Virtual Centre
2 DAYS | ALL DAY
Thu 18 Jun 2026
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QA On-Line Virtual Centre
2 DAYS | ALL DAY
Thu 06 Aug 2026
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QA On-Line Virtual Centre
2 DAYS | ALL DAY
Mon 12 Oct 2026
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VIRTUAL

QA On-Line Virtual Centre
2 DAYS | ALL DAY
Thu 17 Dec 2026
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