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Advanced DeepSeek: Fine-Tuning, Optimization, and Deployment · LearnSpace
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Advanced DeepSeek: Fine-Tuning, Optimization, and Deployment

Курс от Packt
Продвинутый≈ 2.8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

In the rapidly advancing field of AI, fine-tuning, optimizing, and deploying models like DeepSeek are essential for building specialized, scalable systems. This course covers the most advanced techniques in AI model development, focusing on DeepSeek's adaptation for domain-specific applications such as legal reasoning, performance optimization, and deployment strategies. Through in-depth lessons, learners will explore the fine-tuning process for improving model accuracy, optimizing performance, and deploying DeepSeek models in production environments. You will delve into topics like model distillation, cloud-based deployment strategies, and cost management, enabling you to scale AI systems effectively while ensuring performance meets real-world needs. What makes this course stand out is its practical focus on deployment scenarios and optimization strategies that help learners apply their knowledge directly to the challenges they will encounter in professional settings. You'll gain the expertise to make strategic decisions regarding deployment frameworks, hardware, and production operations, making your AI models not only efficient but also sustainable in long-term applications. This course is ideal for AI practitioners, engineers, and data scientists with experience in machine learning or deep learning. It requires familiarity with machine learning concepts and AI deployment practices. This course is part three of a three-course Specialization designed to provide a comprehensive learning pathway in this subject area. While it delivers standalone value and practical skills, learners seeking a more integrated and in-depth progression may benefit from completing the full Specialization.

Навыки, которые вы освоите

Model DeploymentModel OptimizationArtificial Intelligence and Machine Learning (AI/ML)Data ScienceTransfer LearningLarge Language ModelingAI WorkflowsLegal TechnologyCloud DeploymentGeminiLLM ApplicationPerformance TuningCloud ComputingDeep LearningDeepseekModel TrainingMLOps (Machine Learning Operations)Generative AI AgentsFine-tuning

Программа курса

2 модулей · 27 учебных материалов

01DeepSeek-Driven Fine-Tuning of Gemma 3 for Legal Reasoning11 материалов

From Distillation to Deployment: Building Legal AI with Gemma 3

OverviewВидеоIntroductionЧтениеUnderstanding the Importance of Distillation and Fine-TuningЧтениеThe Multi-Label Extraction Problem in Legal TextsЧтение

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Packt - Course Instructors

Преподаватель курса

Advanced DeepSeek: Fine-Tuning, Optimization, and Deployment
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Обучение на Coursera

≈ 2.8 ч

2 модулей

Язык: Английский

Часть программы вашего университета
LLMOps Tools for Model DistillationЧтение
The Two-Stage Workflow for Legal Rationale DistillationЧтение
ZenML Pipeline Data ProcessingЧтение
Fine-tuning Gemma 3 on CUADЧтение
Evaluation and ResultsЧтение
Performance Optimization PotentialЧтение
Legal Reasoning Model Development and DeploymentЗадание
02Deploying DeepSeek Models16 материалов

Mastering DeepSeek Deployment: Strategies, Optimization, and Operations

OverviewВидеоIntroductionЧтениеWhy Self-Deploy and What Makes DeepSeek UniqueЧтениеA Decision-Making Framework for Choosing Your Deployment StrategyЧтениеCost Sanity CheckЧтениеThree Paths to DeploymentЧтениеHardware and Inference Optimization Engines for DeploymentЧтениеThe Power of QuantizationЧтениеHands-on Deployment GuidesЧтениеManaged Deployment on Amazon BedrockЧтениеDeployment of DeepSeek V3 to the Cloud Using Hugging Face Inference EndpointsЧтениеProduction Operations and MonitoringЧтениеScaling and PerformanceЧтениеCost ManagementЧтениеCI/CD for ModelsЧтениеDeploying DeepSeek ModelsЗадание