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Building and Deploying Generative AI Models · LearnSpace
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Building and Deploying Generative AI Models

Курс от Alberta Machine Intelligence Institute
Средний≈ 13.7 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

Transition from theoretical concepts to production-ready engineering in this hands-on course which is the final part in "Fundamentals of Generative AI" specialization. Designed for learners ready to move beyond the theory, this course focuses entirely on construction: you won't just learn about Large Language Models (LLMs); you will build, refine, and deploy them. We start at the foundational level, coding different types of Transformer architectures from scratch using PyTorch. Through high-performance training with Automatic Mixed Precision and ROUGE/BLEU evaluation, you will learn the techniques to scale custom components into optimized systems. By utilizing pre-trained models and weighing performance trade-offs, you will gain the insight needed to select the most efficient path for large-scale deployment. Moving to applied architecture, you will master Retrieval Augmented Generation (RAG) using LangChain, learning to evaluate pipelines and apply advanced techniques such as different chunking strategies, reranking and compression, and query transformation. You'll also navigate model selection as well as the critical trade-offs between RAG and Fine-tuning. Finally, you will step into the future of AI by developing autonomous Agents. You will bridge the gap between development and production by setting up a professional workflow with Poetry and deploying a Summarizer AI Agent directly to the Google Cloud Platform (Vertex AI). By the end of this course, you will possess a tangible portfolio of code and a live deployment, proving your ability to engineer robust Generative AI solutions.

Навыки, которые вы освоите

Model DeploymentLangChainPyTorch (Machine Learning Library)Generative AI AgentsGoogle Cloud PlatformGenerative Model ArchitecturesGenerative AIDeep LearningAgentic systemsModel TrainingAgentic WorkflowsLarge Language ModelingModel OptimizationSystem MonitoringEmbeddingsLLM ApplicationModel EvaluationFine-tuningAI WorkflowsArtificial Intelligence and Machine Learning (AI/ML)

Программа курса

3 модулей · 63 учебных материалов

01Building Transformer From Scratch30 материалов

Introduction

Course IntroductionВидеоMeet your instructor: Amreen AnbarВидеоMeet your instructor: Anahita DoostiВидеоMeet your instructor: Soroush RazaviВидео

Transformers: The Fundamentals

Учитесь у экспертов

Amreen Anbar

Преподаватель курса

Soroush Razavi

Преподаватель курса

Anahita Doosti

Machine Learning Educator

Building and Deploying Generative AI Models
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Обучение на Coursera

≈ 13.7 ч

3 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Пушту, Испанский, Дари, Японский

Часть программы вашего университета
Transformer: Evolution UnveiledВидео
The original paper, "Attention Is All You Need"Чтение
Transformer: TypesВидео
Transformer: The ComponentsВидео
Interactive Transformer ExplainerЧтение
Setting The Stage: Environment, Libraries and DataВидео

Transformers: Build, Train and Scale

Looking beyond theory: Let’s Build a Transformer!ВидеоLooking beyond theory: Training and Text GenerationВидеоNotebook 1ЧтениеBuilding the Complete Encoder-Decoder Summarizer: Encoder, Decoder, and the Cross-Attention MechanismВидеоBuilding the Complete Encoder-Decoder Summarizer: Teacher Forcing, Loss, and InferenceВидеоNotebook 2ЧтениеScaling the Architecture: From Character Tokens to BPE and Massive DataВидеоScaling the Architecture: High-Performance Optimization (AMP) and ROUGE EvaluationВидеоNotebook 3ЧтениеDataset (cnn_dailymail)ЧтениеSynthesis: Implementation of the Translator TransformerВидеоNotebook 4ЧтениеDataset (wmt14)ЧтениеROUGE and BLEU Score for NLP EvaluationЧтение

Transformers: Load and Run

Bypass the Training Wall: Powerful LLM Applications Without Massive ComputeВидеоA Resource-Efficient Approach: Using pre-trained models for Summarization ВидеоNotebook 5ЧтениеA Resource-Efficient Approach: Using Pre-trained Models for TranslationВидеоNotebook 6Чтение

Quiz Assessment

Section 1 QuizЗадание
02Retrieval Augmented Generation (RAG): Bridging the LLM Knowledge Gap16 материалов

Build and Evaluate Your First RAG

What is RAG?ВидеоCoding Notebooks ЧтениеBuilding a Minimal RAG from Scratch with Ollama (Part 1)ВидеоBuilding a Minimal RAG from Scratch with Ollama (Part 2)ВидеоAn Improved RAG Pipeline with LangChainВидеоRAG Evaluation and MetricsВидеоImplementing RAG EvaluationВидео

Refining RAG: Advanced Techniques

Document Loaders and Chunking StrategiesВидеоVector Stores and IndexingВидеоReranking and Contextual CompressionВидеоQuery TransformationВидеоPick the Right Models for your RAGВидеоFinal RAG Results Чтение

RAG vs. Finetuning

What is Finetuning?ВидеоRAG vs. Finetuning: Which one to choose?Видео

Quiz Assessment

Section 2 QuizЗадание
03AI Agents with ADK17 материалов

Explaining Agentic AI Concepts

What is an Agent?ВидеоDifferent Approaches to Building AgentsВидеоOur Approach in This CourseВидеоADK Features and ToolsВидео

How to Build an AI Agent with Salable Deployment in Mind

Setting Up the Cloud EnvironmentВидеоSetting Up the Local EnvironmentВидеоFrom Basic to Advanced AgentsВидеоDeployment Pathways for ADK AgentsВидео

Hands on With AI Agents

Project Installation: Dependency and Environment ManagementВидеоProject Link and DescriptionЧтениеAgent Structure and WorkflowВидеоRunning The Agent Part 1: InitiatingВидеоRunning The Agent Part 2: AnalyzingВидеоDeploying Agent to The CloudВидео

Quiz Assessment

Section 3 QuizЗадание

Course Wrap Up

Wrap UpВидео
Monitoring The Deployment on GCPВидео