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Cloud Platforms for ML: AWS, Azure & GCP Deployment · LearnSpace
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Cloud Platforms for ML: AWS, Azure & GCP Deployment

Курс от Board Infinity
Средний≈ 18 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

"Cloud ML Platforms: AWS, Azure, and GCP for ML Engineers is designed for aspiring cloud ML engineers, data scientists, and developers looking to master enterprise ML deployment across the top three cloud providers. You'll learn to deploy, scale, and integrate machine learning models using SageMaker, Azure ML Studio, Vertex AI, BigQuery ML, and serverless functions — while building skills to evaluate and choose the right cloud platform for any business need. The first module dives into the AWS ML ecosystem, where you'll explore SageMaker, Lambda, S3, and Glue to build end-to-end data pipelines and deploy models as scalable endpoints. The second module introduces Azure ML Studio, Azure Functions, and Cognitive Services, enabling low-code workflows, serverless inference, and integration with pre-built NLP and Vision APIs. The third module covers Google Cloud's ML stack — Vertex AI, BigQuery ML, and Cloud Functions — giving you hands-on exposure to unified workflows, SQL-based modeling, and event-driven deployment. The final module equips you with evaluation frameworks to compare AWS, Azure, and GCP on cost, scalability, and integration, helping you make confident build-vs-buy and platform selection decisions. By the end of this course, you will: - Deploy ML models across AWS SageMaker, Azure ML, and Vertex AI using managed services - Build serverless inference workflows with Lambda, Azure Functions, and Cloud Functions - Evaluate cost, scalability, and vendor lock-in trade-offs across major cloud ML platforms - Recommend the right cloud ML platform aligned with enterprise business goals"

Навыки, которые вы освоите

Google Cloud PlatformAmazon Web ServicesCloud DeploymentMicrosoft AzureAWS SageMakerCloud PlatformsServerless ComputingAmazon S3AI IntegrationsPublic CloudModel DeploymentMLOps (Machine Learning Operations)Data PipelinesEnterprise ArchitectureScalabilityCloud ComputingApplied Machine Learning

Программа курса

4 модулей · 69 учебных материалов

01AWS ML Services21 материалов

Career Scope in Cloud ML Engineering (AWS Focus)

Cloud ML Engineer Roles and PathwaysВидеоIndustry Trends in Cloud MLВидеоSkills and CertificationsВидеоReading - Career Scope in Cloud ML Engineering (AWS Focus)Чтение

Учитесь у экспертов

Board Infinity

Instructor

Cloud Platforms for ML: AWS, Azure & GCP Deployment
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 18 ч

4 модулей

Язык: Английский

Часть программы вашего университета
Practice Quiz : Career Scope in Cloud ML Engineering (AWS Focus)Задание

Introduction to AWS ML Stack

Overview of AWS AI/ML ServicesВидеоSageMaker CapabilitiesВидеоServerless ML with AWS LambdaВидеоPractice Quiz : Introduction to AWS ML StackЗаданиеReading - Introduction to AWS ML StackЧтение

Model Deployment on SageMaker

Deploying Models as EndpointsВидеоAutoscaling for InferenceВидеоTesting and Monitoring EndpointsВидеоPractice Quiz : Model Deployment on SageMakerЗаданиеReading - Model Deployment on SageMakerЧтение

Data Pipelines with S3 and Glue

ETL Concepts in AWSВидеоUsing AWS Glue for Data PreparationВидеоAutomating Dataset UpdatesВидеоPractice Quiz : Data Pipelines with S3 and GlueЗаданиеReading - Data Pipelines with S3 and GlueЧтениеAWS ML ServicesЗадание
02Azure ML Services16 материалов

Azure ML Studio Overview

Navigating Azure ML StudioВидеоDataset ManagementВидеоTraining Models in StudioВидеоPractice Quiz : Azure ML Studio OverviewЗаданиеReading - Azure ML Studio OverviewЧтение

Deploying with Azure Functions

Introduction to Serverless MLВидеоCreating Azure Functions for InferenceВидеоMonitoring and ScalingВидеоPractice Quiz : Deploying with Azure FunctionsЗаданиеReading - Deploying with Azure FunctionsЧтение

Cognitive Services Integration

Overview of Cognitive ServicesВидеоUsing NLP and Vision APIsВидеоCombining Cognitive and Custom ModelsВидеоPractice Quiz : Cognitive Services IntegrationЗаданиеReading - Cognitive Services IntegrationЧтениеGraded Quiz : Azure ML ServicesЗадание
03Google Cloud ML Services16 материалов

Vertex AI Overview

Introduction to Vertex AIВидеоTraining and Deployment WorkflowsВидеоMonitoring and MetadataВидеоPractice Quiz : Vertex AI OverviewЗаданиеReading - Vertex AI OverviewЧтение

BigQuery ML for Data-Centric Teams

Building Models with SQLВидеоEvaluating Model PerformanceВидеоIntegrating with BI ToolsВидеоPractice Quiz : BigQuery ML for Data-Centric TeamsЗаданиеReading - BigQuery ML for Data-Centric TeamsЧтение

Cloud Functions for ML Serving

Event-Driven ML InferenceВидеоDeploying Lightweight ModelsВидеоTesting and Monitoring FunctionsВидеоPractice Quiz : Cloud Functions for ML ServingЗаданиеReading - Cloud Functions for ML ServingЧтениеGraded Quiz : Google Cloud ML ServicesЗадание
04Comparing and Choosing Platforms16 материалов

Platform Comparison Framework

Defining Evaluation CriteriaВидеоAnalyzing Feature ParityВидеоIntegration and Vendor Lock-InВидеоPractice Quiz : Platform Comparison FrameworkЗаданиеReading - Platform Comparison FrameworkЧтение

Cost and Scalability Analysis

Understanding Pricing ModelsВидеоScaling for Inference LoadsВидеоCost Simulation ToolsВидеоPractice Quiz : Cost and Scalability AnalysisЗаданиеReading - Cost and Scalability AnalysisЧтение

Build vs. Buy Decisions

Managed vs. Custom ML ServicesВидеоIntegration ScenariosВидеоPresenting Platform RecommendationsВидеоPractice Quiz : Build vs. Buy DecisionsЗаданиеReading - Build vs. Buy DecisionsЧтениеGraded Quiz : Comparing and Choosing PlatformsЗадание