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GenAI Model Development and Production Engineering · LearnSpace
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GenAI Model Development and Production Engineering

Курс от STARWEAVER
Средний≈ 10.6 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Frustrated with AI models that can't understand your specific domain or scale beyond demo environments? Most organizations struggle to transform promising AI prototypes into robust, production-ready systems that deliver consistent value under real-world enterprise demands, leaving breakthrough potential unrealized. This comprehensive GenAI Model Development and Production Engineering course transforms you into a complete GenAI specialist who can fine-tune foundation models for specialized domains, architect resilient deployment infrastructure, and maintain GenAI models in production that scale reliably to millions of users. You'll gain a deep understanding of the GenAI development process, mastering advanced fine-tuning techniques including parameter-efficient methods such as LoRA, implementing enterprise-grade deployment strategies with comprehensive monitoring and automated maintenance, and building production systems using advanced optimization techniques such as semantic caching, hybrid routing, and edge deployment. This course is designed for professionals engineering AI systems at scale, including ML engineers building production-ready GenAI models, DevOps engineers managing GenAI production engineering workflows, platform engineers developing scalable AI infrastructure, and technical architects designing end-to-end enterprise AI solutions. Whether you're optimizing model performance, deploying large language models, or ensuring GenAI in production operates reliably across cloud environments, this course equips you with practical skills to deliver secure, scalable, and high-performance AI systems. Participants should have completed foundational courses in generative AI, data engineering, and AI agent development. Proficiency in advanced Python programming and experience with machine learning frameworks are essential. Learners should also have hands-on familiarity with cloud platforms, Docker, Kubernetes, and the model development process, including model training, evaluation, deployment, and production system architecture. Prior experience with GenAI model development or MLOps concepts will help learners maximize the value of this course. By the end of this course, learners will be able to execute advanced GenAI model development workflows, including LoRA-based fine-tuning and domain-specific model adaptation. They will implement enterprise-grade GenAI production engineering strategies with automated deployment, monitoring, container orchestration, and scalable infrastructure. Additionally, learners will build robust production monitoring systems with real-time alerting and apply advanced optimization techniques including semantic caching, hybrid routing, and edge deployment to deliver reliable, resilient, and production-ready generative AI systems.

Навыки, которые вы освоите

Infrastructure ArchitectureScalabilityModel TrainingTechnology StrategiesContainerizationLarge Language ModelingPerformance TuningGenerative AICloud InfrastructureKubernetesContinuous MonitoringContinuous DeploymentApplication DeploymentMLOps (Machine Learning Operations)Generative AI AgentsJob EvaluationDocker (Software)Enterprise Application ManagementAutomationProcess Optimization

Программа курса

5 модулей · 84 учебных материалов

01GenAI Foundations 24 материалов

Lesson 1: Introduction to Generative AI

Welcome to the Course: Course OverviewЧтениеCourse Introduction ВидеоGenerative AI Impact on Engineering ВидеоFundamentals of Generative AI Systems Architecture Видео

Учитесь у экспертов

Ritesh Vajariya

Advisor | Leader | Speaker |Author

Starweaver

Global Leaders in Professional & Technology Education

GenAI Model Development and Production Engineering
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Обучение на Coursera

≈ 10.6 ч

5 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Индонезийский, Испанский, Японский, Венгерский

Часть программы вашего университета
Setting Up GenAI Development Environments: Local & Cloud Видео
Enterprise Implementation Success Stories Видео
Hands-On-Learning: Introduction to Generative AI Взаимная проверка
A Survey of Generative Artificial IntelligenceЧтение
Identifying High-Impact GenAI Opportunities in Your OrganizationОбсуждение

Lesson 2: Large Language Models

LLM Components and Core Mechanics ВидеоEnterprise LLM Model Comparison ВидеоLLM Integration and API Setup ВидеоStrategic Model Selection Framework ВидеоHands-On-Learning: LLM Integration and API Setup Взаимная проверкаA Brief Survey of Large Language ModelsЧтениеStrategic LLM Selection and Trade-Off Analysis for Enterprise Use CasesОбсуждение

Lesson 3: GenAI Use Cases

Enterprise GenAI Application Matrix ВидеоIndustry-Specific Solution Architecture ВидеоSupport Assistant System Design ВидеоROI Measurement and Metrics ВидеоHands-On-Learning: Support Assistant System Design Взаимная проверкаGenerative AI Use Cases: A PrimerЧтениеIdentifying Quick Wins and Strategic Bets for GenAI ImplementationОбсуждениеGenAI FoundationsЗадание
02GenAI Model Development 22 материалов

Lesson 1: Fine-tuning Basics

Model Fine-tuning Core Concepts ВидеоTraining Data Preparation Guide ВидеоBasic Fine-Tuning Implementation Process ВидеоModel Testing Evaluation Framework ВидеоHands-On-Learning: Fine-Tuning BasicsВзаимная проверкаA Survey on Fine-Tuning of Pretrained Language Models ЧтениеChoosing Fine-Tuning vs. Alternatives for Domain-Specific AI SolutionsОбсуждение

Lesson 2: Advanced Fine-tuning

Advanced Fine-tuning Strategy Design ВидеоPerformance Metric Analysis Framework ВидеоAdvanced Fine-tuning Implementation Guide ВидеоModel Iteration Process Framework ВидеоHands-On-Learning: Advanced Fine-tuningВзаимная проверкаParameter-Efficient Fine-Tuning of LLMs: A Survey Чтение

Lesson 3: Fine-tuning for Support

Support Data Preparation Strategy ВидеоSupport Model Training Framework ВидеоSupport Model Implementation Guide ВидеоQuality Control Testing Protocol ВидеоHands-On-Learning: Fine-Tuning for SupportВзаимная проверкаUltimate Guide to Fine-TuningЧтение
03Production Engineering29 материалов

Lesson 1: Deployment

Production Deployment Strategy Design ВидеоInfrastructure Requirements Planning Framework ВидеоProduction Deployment Implementation Guide ВидеоDeployment Best Practices Protocol ВидеоHands-On-Learning: DeploymentВзаимная проверкаPutting Large Models in ProductionЧтениеEvaluating GenAI Deployment Topologies for Cost Control and ScalabilityОбсуждение

Lesson 2: Monitoring and Maintenance

System Monitoring Strategy Design ВидеоPerformance Metrics Analysis Framework ВидеоMonitoring Tools Implementation Guide ВидеоMaintenance Protocol Development Framework ВидеоHands-On-Learning: Monitoring and MaintenanceВзаимная проверкаAddressing Monitoring Challenges in GenAI SystemsОбсуждение

Lesson 3: Support System Deployment

Support Architecture Planning Guide ВидеоIntegration Strategy Development Framework ВидеоSupport System Implementation Guide ВидеоPerformance Testing Protocol Design ВидеоHands-On-Learning: Support System DeploymentВзаимная проверкаArchitecting Hybrid Workflows for AI-Driven Customer SupportОбсуждение

Lesson 4: Additional Use Cases

Content Generation System Design ВидеоCode Assistant Implementation Guide ВидеоAlternative Implementation Techniques Guide ВидеоUse Case Selection Framework ВидеоGenerative AI in Healthcare, Finance, and More ЧтениеHands-On-Learning: Alternative GenAI Implementation TechniquesВзаимная проверка
04Future Trends 7 материалов
Future Technology Landscape Analysis ВидеоIndustry Impact Assessment Framework ВидеоEmerging Tools Implementation GuideВидеоTechnology Adoption Strategy Design ВидеоEmerging Trends in Generative AI ЧтениеAdopting Transformative GenAI Technologies in Your IndustryОбсуждениеFuture Trends Задание
05Course Conclusion2 материалов
Course Conclusion ВидеоProject: GenAI Production Deployment Challenge Взаимная проверка
Designing Efficient Advanced Fine-Tuning Strategies for Complex DomainsОбсуждение
Fine-Tuning Support Models for Privacy Consistency and EmpathyОбсуждение
GenAI Model Development Задание
Comprehensive Guide to LLM MonitoringЧтение
Customer Support ChatbotЧтение
Prioritizing GenAI Use Cases and Implementation ApproachesОбсуждение
Production EngineeringЗадание