AI-900 Azure AI Fundamentals Practice Exam Questions 2025

AI 900 Azure AI Fundamentals Exam Preparation Course, AI-900 Azure AI Fundamentals with 324 Practice Exam Questions

AI 900 Azure AI Fundamentals Exam Preparation Course, AI-900 Azure AI Fundamentals with 324 Practice Exam Questions

Overview

From Video Quiz, Students will Gain Confidence Face Real Exam Question, Attend Original Exam like Question, Practice with more than 300 Questions, Learn from the explanation provided in each solution

The ideal starting point for students planning to move into advanced Azure AI certifications., For students who prefer to build a solid conceptual base before tackling specialized Azure Ai exams., Future advanced Azure Ai certification candidates who need to master the fundamentals first.

Familiarity with cloud computing, AI and Azure services will significantly aid your preparation.

Prepare for the AI-900 or AI 900 exam with confidence! This set includes 324 unique practice questions created from scratch and fully compliant with the official 2025 exam syllabus.


The AI-900 exam syllabus is structured around five main domains, covering core AI/ML concepts and how they are implemented using Microsoft Azure AI services.


Domain                                                                                                                            Approximate Weighting

1. Describe Artificial Intelligence workloads and considerations                                         15-20%

2. Describe fundamental principles of machine learning on Azure                                      15-20%

3. Describe features of computer vision workloads on Azure                                               15-20%

4. Describe features of Natural Language Processing (NLP) workloads on Azure            15-20%

5. Describe features of generative AI workloads on Azure                                                    20-25%


1. Describe Artificial Intelligence workloads and considerations (15-20%)

  • Identify features of common AI workloads: computer vision, NLP, document processing, generative AI.

  • Identify guiding principles for responsible AI: fairness, reliability & safety, privacy & security, inclusiveness, transparency, accountability.


2. Describe fundamental principles of machine learning on Azure (15-20%)

  • Identify common machine learning techniques: regression, classification, clustering, deep learning, Transformer architecture.

  • Describe core machine learning concepts: features and labels, training vs validation datasets.

  • Describe Azure Machine Learning capabilities: automated ML, data & compute services, model management & deployment.


3. Describe features of computer vision workloads on Azure (15-20%)

  • Identify types of computer vision solutions: image classification, object detection, OCR, facial detection/analysis.

  • Identify Azure tools & services: e.g., Azure AI Vision, Azure AI Face detection service.


4. Describe features of Natural Language Processing (NLP) workloads on Azure (15-20%)

  • Identify features & uses of NLP scenarios: key phrase extraction, entity recognition, sentiment analysis, language modelling, speech recognition & synthesis, translation.

  • Identify Azure tools & services for NLP workloads: e.g., Azure AI Language, Azure AI Speech.


5. Describe features of generative AI workloads on Azure (20-25%)

  • Identify features of generative AI models and common use-cases.

  • Identify generative AI services/capabilities in Azure: e.g., Azure OpenAI Service, Azure AI Foundry (model catalog).

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Our teaching approach combines concepts, examples, and visuals for better understanding, along with the mind-map technique to help learners connect ideas and retain knowledge for the long term.

Each course is enriched with multiple projects (with demos and code), assignments, exercises, and MCQs to strengthen practical and theoretical skills.

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