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Architecting and Integrating Scalable AI Systems · LearnSpace
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Architecting and Integrating Scalable AI Systems

Курс от Coursera
Средний≈ 13.7 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Architecting and Integrating Scalable AI Systems focuses on designing end-to-end AI architectures that support scalable, reliable machine learning applications. In this course, you will learn how to translate business requirements into AI system designs and integrate machine learning models into production environments. You will begin by exploring system architecture concepts used to design AI systems, including requirements analysis, component design, and system modeling techniques. Next, you will learn how to deploy and optimize AI workloads in cloud environments while balancing performance, scalability, and operational costs. The course also covers designing scalable system components that support machine learning services and creating architecture diagrams that guide implementation. Finally, you will explore strategies for integrating AI services using APIs, messaging systems, and monitoring tools to ensure reliable system performance. By the end of this course, you will be able to design scalable AI architectures, integrate machine learning services into larger systems, and evaluate system performance and reliability in production environments. Tools and technologies covered include cloud computing platforms, REST APIs, system architecture frameworks, monitoring tools, and distributed system integration techniques.

Навыки, которые вы освоите

Systems ArchitectureAI IntegrationsScalabilityDistributed ComputingSolution ArchitecturePerformance TuningCloud Computing ArchitectureModel TrainingRequirements AnalysisSystems DesignArtificial Intelligence and Machine Learning (AI/ML)Cloud DeploymentSystem Design and ImplementationCloud ServicesCloud ManagementSystems IntegrationRestful APIApplication Programming Interface (API)Model DeploymentBusiness Requirements

Программа курса

11 модулей · 70 учебных материалов

01Architect AI Systems: From Concept to Code: Traceable AI: Using SysML to Connect Requirements to System Components5 материалов
Welcome and What You’ll Learn About AI System TraceabilityВидеоLet’s Map Your AI ContextDIALOGUESysML Basics: Requirement, Block, and Sequence Diagrams ExplainedВидеоTracing Requirements Across AI PipelinesЧтение

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Преподаватель курса

Architecting and Integrating Scalable AI Systems
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Обучение на Coursera

≈ 13.7 ч

11 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Корейский, Пушту, Индонезийский, Испанский, Дари, Японский

Часть программы вашего университета
Hands-on Activity Trace the Missing Link: Identify Gaps in a Requirement-to-Component MapЗадание
02Architect AI Systems: From Concept to Code: Architecting AI: Build MBSE Artifacts for System Structure and Behavior7 материалов
What MBSE Offers for AI: Structure Before CodeВидеоBuilding an AI Architecture Package with MBSEЧтениеHands-On Activity: Design an AI System Skeleton Using MBSE DiagramsЗаданиеReflect on Your Architecture ChoicesDIALOGUEGenerate a SysML Sequence Diagram Using PythonВидеоModel the AI Retraining Pipeline with SysML Sequence DiagramsЛабораторнаяGraded Quiz: Architect AI Systems: From Concept to CodeЗадание
03Deploy and Optimize Cloud AI Architectures: Deploy Scalable ML Training Using Managed Cloud Services 7 материалов

Deploy Scalable ML Training Using Managed Cloud Services

Launching Scalable ML Training with Spot Instances on Managed Cloud ServicesВидеоWelcome: Your Cloud AI Architecture JourneyDIALOGUEWhy Scalable Training Needs Managed Cloud ServicesВидеоFoundations of Distributed Training and Cost-Efficient Cloud ComputeЧтениеLaunching Distributed Training Jobs with Spot InstancesВидеоHands-on Activity: Deploy Your First Distributed Training JobЗаданиеPractice Quiz: Troubleshoot a Misconfigured Training JobЗадание
04Deploy and Optimize Cloud AI Architectures: Analyze Performance Metrics and Recommend Architectural Changes6 материалов
How to Read GPU Utilization and Identify BottlenecksВидеоInterpreting Performance Metrics to Optimize Cloud AI ArchitecturesЧтениеRight-Sizing: Choosing More Efficient Instance FamiliesВидеоHands-on Activity: Analyze Logs and Recommend an Optimized ArchitectureЗаданиеWhich Metric Would You Prioritize?DIALOGUEGraded Quiz: Deploy and Optimize Cloud AI ArchitecturesЗадание
05Design Scalable AI Systems and Components: Architecting for Scale7 материалов
Why AI Systems Break at ScaleВидеоDiagnosing Inference Bottlenecks in Real-World AI SystemsDIALOGUEDesigning the Inference Tier: Scaling Models Under LoadВидеоLatency Budgets and Fault Tolerance in AI PipelinesЧтениеHorizontal Scaling: When, Why, and HowВидеоHands-On Activity: Draft a Scaling Plan for an Inference EndpointЗаданиеWhat tradeoffs do you make when reducing inference latency?DIALOGUE
06Design Scalable AI Systems and Components: Translating Architecture into Implementable Components 7 материалов
From System to Components: C4 Diagrams for AI PipelinesВидеоSpecifying Interfaces for ML ServicesЧтениеData Flow Deep Dive: Feature Store, Model API, and Monitoring StackВидеоHands-On Activity: Produce a C4 Component Diagram for a Scalable AI SystemЗаданиеWrite Interface Specs for Each ComponentЗаданиеWhat makes an interface spec "implementation-ready"DIALOGUEGraded Quiz: Design Scalable AI Systems and ComponentsЗадание
07Integrate and Optimize AI Services Seamlessly: Why AI Services Need Strong Integration Foundations 7 материалов
Your First Integration Decision: Connecting an AI Prediction ServiceDIALOGUEWhere AI Systems Break: Integration FirstВидеоAPIs, Queues, and Serialization: The Core Integration ToolkitЧтениеHow gRPC and Protobuf Reduce Latency and ErrorsВидеоIntegrating an AI Prediction Service: Choosing the Right InterfaceВидеоQuiz: Mapping Integration Choices to System RequirementsЗаданиеHands-on Activity: Designing an Integration Plan for an AI Prediction ServiceЗадание
08Integrate and Optimize AI Services Seamlessly: Evaluate Deployment Health and Act on Real-Time Signals 7 материалов
When a Release Goes Wrong: What Would You Check First?DIALOGUEWhy Deployment Health Is Your Real Safety Net?ВидеоUnderstanding Latency Percentiles in Production SystemsЧтениеCanary Releases: Roll Forward, Stabilize, or Roll Back?ВидеоDemo: Reading Prometheus Dashboards During a CanaryВидеоHands-on Activity: Respond to a Canary Release IncidentЗаданиеFinal Assessment: Integrating and Optimizing AI Services in ProductionЗадание
09Architect AI Solutions: From Needs to Models: Analyze Requirements to Select AI Approaches8 материалов
Understanding Requirements Before Choosing AI ToolsDIALOGUEIntroduction and WelcomeВидеоFrom Requirements to AI Approach SelectionВидеоHow to Analyze AI Requirements and Select the Right ApproachЧтениеFrameworks for Selecting AI Services and ModelsВидеоHands-On Activity: Analyze Stakeholder RequirementsЗаданиеKnowledge Check: Requirements to AI ApproachЗаданиеFrom Requirements to Real-World AI DesignDIALOGUE
10Architect AI Solutions: From Needs to Models: Designing AI Solution Architectures with Services and Custom Models6 материалов
What Makes a Good AI Solution Architecture?ВидеоPrinciples of AI Solution ArchitectureЧтениеArchitecture Walkthrough: Image Search With Vision API + Custom Ranking ModelВидеоHands-On Activity: Design a Hybrid Image-Search ArchitectureЗаданиеReflection: What Did Balancing Teach You?DIALOGUEGraded Quiz: Balance It RightЗадание
11Project: Architect and Design a Scalable AI Customer Intelligence Platform3 материалов
Why Scalable AI System Architecture Matters ЧтениеArchitecture Design Requirements for an AI Customer Intelligence PlatformЧтениеProject: Architect and Design a Scalable AI Customer Intelligence PlatformЗадание