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Google Vertex AI for Machine Learning Practitioners

  • Course Code GO9091
  • Duration 1 day

Course Delivery

Company Event Price

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Course Delivery

This course is available in the following formats:

  • Company Event

    Event at company

  • Public Classroom

    Traditional Classroom Learning

  • Virtual Learning

    Learning that is virtual

Request this course in a different delivery format.

Course Overview

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This instructor-led, one-day course is designed for engineers and data scientists familiar with machine learning models who want to become proficient in using Vertex AI for custom model workflows. This practical, hands-on course will provide you with a deep dive into the core functionalities of Vertex AI, enabling you to effectively leverage its tools and capabilities for your ML projects.

Updated 11/3/2026

Company Events

These events can be delivered exclusively for your company at our locations or yours, specifically for your delegates and your needs. The Company Events can be tailored or standard course deliveries.

Course Schedule

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Target Audience

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Machine Learning Engineers, Data Scientists

Course Objectives

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By the end of the course, learners will be able to:

  • Understand the key components of Vertex AI and how they work together to support ML workflows.
  • Configure and launch Vertex AI Custom Training and Hyperparameter Tuning jobs to optimize model performance.
  • Organize and version models using Vertex AI Model Registry for easy access and tracking.
  • Configure serving clusters and deploy models for online predictions with Vertex AI Endpoints.
  • Operationalize and orchestrate end-to-end ML workflows with Vertex AI Pipelines for increased efficiency and scalability.
  • Configure and set up monitoring on deployed models.

Course Content

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Module 1: Training, Tuning, and Deploying Models on Vertex AI

  • Understand Containerized Training Applications
  • Understand Vertex AI Custom Training and Tuning Jobs
  • Understand how to track and version your trained models in the Vertex AI Model Registry
  • Understand Online Deployment with Vertex AI Endpoints

Module 2: Orchestrating End-to-End Workflows with Vertex AI Pipelines

  • Understand Kubeflow
  • Understand pre-built and lightweight Python components
  • Understand how to compile and execute pipelines on Vertex AI

Module 3: Model Monitoring on Vertex AI

  • Understand Feature Drift and Skew
  • Understand Model Monitoring for models deployed to Vertex AI Endpoints

Course Prerequisites

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  • Experience building and training custom ML models. Familiar with Docker.

Test Certification

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  • None

Follow on Courses

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  • None recommended

Further Information

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  • Official course book provided to participants
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