Cloud AI Platforms: AWS, Azure & Google Cloud Integration Training Course

 

Cloud AI Platforms: AWS, Azure & Google Cloud Integration Training Course

Introduction

In the era of large-scale Artificial Intelligence (AI) and Machine Learning (ML), cloud platforms have become indispensable, providing the scalable infrastructure and specialized services required to build, train, and deploy intelligent applications. This Cloud AI Platforms: AWS, Azure & Google Cloud Integration Training Course is specifically designed for AI engineers, data scientists, developers, and architects who need to master the leading cloud ecosystems: Amazon Web Services (AWS) AI/ML, Microsoft Azure AI, and Google Cloud AI. Participants will gain comprehensive expertise in leveraging the diverse suite of AI services offered by these platforms, enabling them to design and implement robust, enterprise-grade AI solutions.

This immersive program will delve into the practical aspects of integrating and utilizing cloud-native AI services, covering everything from managed machine learning platforms like AWS SageMaker, Azure Machine Learning, and Google Cloud Vertex AI, to specialized cognitive services for vision, speech, and natural language. You will learn to navigate the unique strengths of each platform, focusing on model deployment, MLOps, cost optimization, scalability, and security within a cloud environment. By the end of this course, you will be proficient in selecting, configuring, and integrating the most appropriate cloud AI tools to accelerate your AI development lifecycle and drive innovation.

Target Audience

  • AI/ML Engineers and Data Scientists planning to deploy models in the cloud.
  • Cloud Architects designing AI-powered solutions.
  • DevOps and MLOps Engineers managing AI workflows in cloud environments.
  • Software Developers integrating AI services into applications.
  • IT Professionals seeking to understand cloud-based AI infrastructure.
  • Technical Managers overseeing cloud and AI initiatives.

Duration

10 days

Course Objectives

  1. Understand the core concepts of cloud computing and its relevance to AI/ML workloads.
  2. Gain proficiency in key AI and Machine Learning services across AWS, Azure, and Google Cloud.
  3. Learn to choose the optimal cloud AI platform and services for specific use cases.
  4. Master techniques for data management, preparation, and storage in multi-cloud AI environments.
  5. Implement strategies for training, deploying, and managing ML models on cloud platforms.
  6. Explore specialized cognitive services for computer vision, natural language processing, and speech.
  7. Develop skills in securing AI workloads, managing access, and ensuring compliance in the cloud.
  8. Optimize cloud AI solutions for performance, scalability, and cost-efficiency.

Physical Training Schedule

Start & End Date

Location

Fee (USD)

Register

July 20- July 31, 2026

Dar es Salaam

4,000

Aug 3- Aug 14, 2026

Nairobi

3,000

Aug 17- Aug 28, 2026

Kigali

4,000

Sep 7- Sept 18, 2026

Nairobi

3,000

Sep 14- Sept 25, 2026

Pretoria

5,950

Oct 5- Oct 16, 2026

Nairobi

3,000

Oct 19- Oct 30, 2026

Mombasa

3,450

Nov 2- Nov 13, 2026

Nairobi

3,000

Nov 16- Nov 27, 2026

Kigali

4,000

Dec 7 – Dec 18, 2026

Nairobi

3,000

Jan 5- Jan 16, 2027

Kigali

4,000

Jan 19- Jan 30, 2027

Nairobi

3,000

Feb 2- Feb 13, 2027

Mombasa

3,450

Feb 16- Feb 27, 2027

Nairobi

3,000

Mar 2- Mar 13, 2027

Kigali

4,000

Mar 16- Mar 27, 2027

Nairobi

3,000

Apr 6- Apr 17, 2027

Dar es Salaam

4,000

Apr 13- Apr 24, 2027

Nairobi

3,000

May 4- May 15, 2027

Pretoria

5,950

May 18- May 29, 2027

Nairobi

3,000

Jun 1- Jun 12, 2027

Mombasa

3,450

Jun 15- Jun 26, 2027

Nairobi

3,000

Jul 6- Jul 17, 2027

Nairobi

3,000

Online Training Schedule

Start & End Date

Fee (USD)

Register

Aug 3 – Aug 14, 2026

1,200

Sept 7 – Sept 18, 2026

1,200

Oct 5 – Oct 16, 2026

1,200

Nov 2 – Nov 13, 2026

1,200

Dec 7 – Dec 18, 2026

1,200

Jan 5- Jan 16, 2027

1,200

Feb 2- Feb 13, 2027

1,200

Mar 2- Mar 13, 2027

1,200

Apr 6- Apr 17, 2027

1,200

May 4- May 15, 2027

1,200

Jun 1- Jun 12, 2027

1,200

Jul 6- Jul 17, 2027

1,200

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