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RITWICK BHARGAV

회원 가입일: 2025

다이아몬드 리그

11073포인트
Build Agents with the Agent Development Kit Earned 8월 11, 2026 EDT
Build with the Managed Agents API on Gemini Enterprise Agent Platform Earned 8월 11, 2026 EDT
Evaluate and Improve Agent Development Kit Agents Earned 8월 11, 2026 EDT
Accelerate Agent Development with Antigravity and Agents CLI Earned 8월 10, 2026 EDT
Accelerate Development with Antigravity Earned 8월 10, 2026 EDT
Gemini로 멀티모달 데이터 분석 및 추론 Earned 6월 20, 2026 EDT
Engineer Effective Prompts for Generative Models Earned 5월 28, 2026 EDT
Create media search and media recommendations applications with AI Applications Earned 5월 27, 2026 EDT
Recommendations with AI Applications Earned 5월 27, 2026 EDT
Gemini Enterprise로 더 신속하게 지식 교환 Earned 5월 27, 2026 EDT
Add Agents to Gemini Enterprise Earned 5월 27, 2026 EDT
Use a Third-Party Identity Provider with Workforce Identity Federation Earned 5월 27, 2026 EDT
[DEPRECATED] Introduction to NotebookLM Earned 5월 27, 2026 EDT
Create Data Stores for Gen AI Applications Earned 5월 27, 2026 EDT
Introduction to AI Applications Earned 5월 27, 2026 EDT
에이전트 기초 Earned 1월 10, 2026 EST
Configure AI Applications to optimize search results Earned 1월 10, 2026 EST
Improve Agent Search Results on Agent Platform Earned 1월 10, 2026 EST
Agent Search Analytics on Agent Platform Earned 1월 10, 2026 EST
Agent Search UI configurations on Agent Platform Earned 1월 10, 2026 EST
Create and maintain Vertex AI Search data stores Earned 1월 3, 2026 EST
Build search and recommendations applications with AI Applications Earned 1월 3, 2026 EST
Deploy an Agent with Agent Development Kit (ADK) Earned 12월 31, 2025 EST
Deploy a RAG application with vector search in Firestore Earned 12월 28, 2025 EST
Integrate Vertex AI Search and Conversation into Voice and Chat Apps Earned 12월 27, 2025 EST
Deploy and Evaluate Model Garden Models Earned 12월 26, 2025 EST
Extend Gemini with controlled generation and Tool use Earned 12월 25, 2025 EST
BigQuery ML을 사용한 예측 모델링을 위한 데이터 엔지니어링 Earned 12월 25, 2025 EST
BigQuery ML로 ML 모델 만들기 Earned 12월 25, 2025 EST
Google Cloud에서 ML API용으로 데이터 준비하기 Earned 12월 25, 2025 EST
개발자를 위한 책임감 있는 AI: 개인 정보 보호 및 안전 Earned 12월 25, 2025 EST
개발자를 위한 책임감 있는 AI: 해석 가능성 및 투명성 Earned 12월 25, 2025 EST
개발자를 위한 책임감 있는 AI: 공정성 및 편향 Earned 12월 25, 2025 EST
Google Cloud에서 생성형 AI 앱 만들기 Earned 12월 25, 2025 EST
Vertex AI로 머신러닝 작업(MLOps): 모델 평가 Earned 12월 25, 2025 EST
대규모 언어 모델 소개 Earned 12월 25, 2025 EST
생성형 AI 소개 Earned 12월 25, 2025 EST
생성형 AI를 위한 머신러닝 작업(MLOps) Earned 12월 25, 2025 EST

In this course, you'll learn to use the Agent Development Kit (ADK) to build systems where multiple AI agents collaborate on complex tasks. You'll start with the ADK agent model: how ADK represents agents, tools, and runners, and how a single agent is configured and run. You'll then make tools the model can call, persist session state across agents, and instrument the execution lifecycle with callbacks and plugins. Next, you'll orchestrate multiple agents using ADK's template workflow agents and graph-based workflows, and ground them in enterprise data through multi-source retrieval and MCP integrations. Finally, you'll deploy a multi-agent system to Agent Runtime as a managed service and register and share it through Gemini Enterprise so users across an organization can reach it.

자세히 알아보기

In this course, you'll learn to build and run enterprise agents on the Managed Agents API, the managed agent runtime on Gemini Enterprise Agent Platform. Three conceptual lessons give you the mental model. You'll learn why a real business task needs an agent rather than a chat model. You'll examine how the platform splits into a control plane that defines agents and a data plane that runs them. You'll learn how to assemble an agent from a definition, a sandboxed environment, mounted data, tools, and skills. And you'll learn how to run it with background interactions, a streamed reason-act loop, resilient typed results, and state that persists across turns. You then put that model to work in a hands-on lab, where you build, run, and harden a retail merchandising agent for Cymbal Retail from an empty project to a production-shaped deployment. By the end, you'll be able to design, build, and operate a managed agent of your own.

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Complete the Evaluate and Improve Agent Development Kit Agents skill badge to demonstrate your ability to use ADK's evaluation tools to "hill climb" — making measurable, iterative improvements to an agent. You will run an initial evaluation to establish a baseline, apply optimization techniques, and re-evaluate the agent to measure your success.

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In this course, you’ll learn to simplify the creation of autonomous enterprise agents using the Agent Development Kit (ADK) and you will learn how to leverage the power of Antigravity and the Agents CLI to transform your agent development workflow. In this course. You will explore practical techniques to automate repetitive tasks and significantly accelerate the creation of robust, enterprise-grade agents, ensuring scalability and efficiency in your AI projects.

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Complete the Accelerate Development with Antigravity skill badge to demonstrate your proficiency in using the Antigravity IDE for developing agentic workflows. You will be tasked with configuring an MCP server, authoring custom agent skills and rules, prototyping with the Agents CLI, and deploying to the Google Cloud Agent Runtime. A skill badge is an exclusive digital badge issued by Google Cloud in recognition of your proficiency with Google Cloud products and services and tests your ability to apply your knowledge in an interactive hands-on environment. Complete the assessment challenge lab, to receive a skill badge that you can share with your network. When you complete this course, you can earn the badge displayed here and claim it on Credly! Boost your cloud career by showing the world the skills you have developed!

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중급 Gemini로 멀티모달 데이터 분석 및 추론 기술 배지 과정을 완료하여 Gemini 2.0 Flash를 사용해 텍스트, 이미지, 오디오(악보로 표시됨), 동영상 데이터를 분석하고 조합된 정보로 추론함으로써 결론 및 인사이트를 도출하는 기술 역량을 입증할 수 있습니다.

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Learn a variety of strategies and techniques to engineer effective prompts for generative models

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Complete the Create media search and media recommendations applications with AI Applications skill badge to demonstrate your ability to create, configure, and access media search and recommendations applications using AI Applications. Please note that AI Applications was previously named Agent Builder, so you may encounter this older name within the lab content. A skill badge is an exclusive digital badge issued by Google Cloud in recognition of your proficiency with Google Cloud products and services and tests your ability to apply your knowledge in an interactive hands-on environment. Complete the assessment challenge lab, to receive a skill badge that you can share with your network. When you complete this course, you can earn the badge displayed here and claim it on Credly! Boost your cloud career by showing the world the skills you have developed!

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Do you want to keep your users engaged by suggesting content they'll love? This course equips you with the skills to build a cutting-edge recommendations app using your own data with no prior machine learning knowledge. You learn to leverage AI Applications to build recommendation applications so that audiences can discover more personalized content, like what to watch or read next, with Google-quality results customized using optimization objectives.

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직원들이 검색창 하나로 문서 스토리지, 이메일, 채팅, 티켓 시스템, 기타 데이터 소스에서 특정 정보를 찾을 수 있도록 설계된 강력한 도구인 Gemini Enterprise에는 Google의 전문적인 검색 및 AI 기술이 통합되어 있습니다. 또한 Gemini Enterprise 어시스턴트를 사용하면 브레인스토밍 및 조사는 물론 문서 개요를 작성하고 캘린더 일정에 동료를 초대하는 등의 작업에 도움이 되므로 직원들이 지식 관련 작업과 모든 종류의 협업을 빠르게 진행할 수 있습니다. (Gemini Enterprise의 이전 명칭은 Google Agentspace였으며, 이 과정에서 이전 제품 이름이 언급될 수 있습니다.)

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In this challenge lab, you will demonstrate your ability to add agents to a Gemini Enterprise app. You will build an agent with Agent Designer. And you will build a no-code agent with Agent Development Kit, deploy it to Agent Engine, and add it to the Gemini Enterprise app.

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This course provides learners the knowledge to configure Workforce Identity Federation to grant Google Cloud and Gemini Enterprise access to users that authenticate using a third-party Identity Provider. The curriculum includes theory and demo videos covering workforce identity pools, OIDC and SAML providers, attribute mapping, IAM policies, and troubleshooting guidance.

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NotebookLM is an AI-powered collaborator that helps you do your best thinking. After uploading your documents, NotebookLM becomes an instant expert in those sources so you can read, take notes, and collaborate with it to refine and organize your ideas. NotebookLM Pro gives you everything already included with NotebookLM, as well as higher utilization limits, access to premium features, and additional sharing options and analytics.

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Data stores represent a simple way to make content available to many types of generative AI applications, including search applications, recommendations engines, Gemini Enterprise apps, Agent Development Kit agents, and apps built with Google Gen AI or LangChain SDKs. Connect data from many sources include Cloud Storage, Google Drive, chat apps, mail apps, ticketing systems, third-party file storage providers, Salesforce, and many more.

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This course introduces AI Applications. You will learn about the types of apps that you can create using AI Applications, the high-level steps that its data stores automate for you, and what advanced features can be enabled for Search apps. (Please note Gemini Enterprise was previously named Google Agentspace, there may be references to the previous product name in this course.)

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이 과정에서는 AI 에이전트에 대한 기본사항을 소개하고 실제 비즈니스 현장에서 에이전트가 가치를 창출하는 영역을 살펴봅니다. 이 과정은 자율적이고 목표 지향적인 행동의 관점에서 AI 시스템을 이해하려는 개발자, 설계자, 기술 의사 결정권자에게 기초를 제공합니다.

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Complete the Configure AI Applications to optimize search results skill badge to demonstrate your proficiency in configuring search results from AI Applications. You will be tasked with implementing search serving controls to boost and bury results, filter entries from search results and display metadata in your search interface. Please note that AI Applications was previously named Agent Builder, so you may encounter this older name within the lab content. A skill badge is an exclusive digital badge issued by Google Cloud in recognition of your proficiency with Google Cloud products and services and tests your ability to apply your knowledge in an interactive hands-on environment. Complete the assessment challenge lab, to receive a skill badge that you can share with your network. When you complete this course, you can earn the badge displayed here and claim it on Credly! Boost your cloud career by showing the world the skills you have developed!

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This course covers techniques for boosting and filtering search results, as well as the implementation of meta tags for advanced search control.

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AI Applications provides built-in analytics for your Agent Search and Gemini Enterprise apps. Learn what metrics are tracked and how to view them in this course.

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Initial deployment of Agent Search and Gemini Enterprise apps takes only a few clicks, but getting the configurations right can elevate a deployment from a basic off-the-shelf app to an excellent custom search or recommendations experience. In this course, you'll learn more about the many ways you can customize and improve search, recommendations, and Gemini Enterprise apps.

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Complete the Create and maintain Vertex AI Search data stores skill badge to demonstrate your proficiency in building various types of data stores used in Vertex AI Search applications. A skill badge is an exclusive digital badge issued by Google Cloud in recognition of your proficiency with Google Cloud products and services and tests your ability to apply your knowledge in an interactive hands-on environment. Complete the assessment challenge lab, to receive a skill badge that you can share with your network. When you complete this course, you can earn the badge displayed here and claim it on Credly! Boost your cloud career by showing the world the skills you have developed!

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Complete the Build search and recommendations AI Applications skill badge to demonstrate your proficiency in deploying search and recommendation applications through AI Applications. Additionally, emphasis is placed on constructing a tailored Q&A system utilizing data stores. Please note that AI Applications was previously named Agent Builder, so you may encounter this older name within the lab content. A skill badge is an exclusive digital badge issued by Google Cloud in recognition of your proficiency with Google Cloud products and services and tests your ability to apply your knowledge in an interactive hands-on environment. Complete the assessment challenge lab, to receive a skill badge that you can share with your network. When you complete this course, you can earn the badge displayed here and claim it on Credly! Boost your cloud career by showing the world the skills you have developed!

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In this challenge lab, you will demonstrate your ability to author agents using Agent Development Kit (ADK), deploy those agents to Agent Engine, and use them from a web app. Complete the challenge lab to earn a Google Cloud skill badge.

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This lab tests your ability to develop a real-world Generative AI Q&A solution using a RAG framework. You will use Firestore as a vector database and deploy a Flask app as a user interface to query a food safety knowledge base.

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This course on Integrate Vertex AI Search and Conversation into Voice and Chat Apps is composed of a set of labs to give you a hands on experience to interacting with new Generative AI technologies. You will learn how to create end-to-end search and conversational experiences by following examples. These technologies complement predefined intent-based chat experiences created in Dialogflow with LLM-based, generative answers that can be based on your own data. Also, they allow you to porvide enterprise-grade search experiences for internal and external websites to search documents, structure data and public websites.

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In this skill bagde, you will demonstrate your ability to use and compare models available in the Vertex AI Model Garden. You'll deploy a model to a Vertex AI Endpoint, query other models via their API, and use Vertex AI's Gen AI evaluation service to measure the performance of multiple models.

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Complete the Extend Gemini with controlled generation and Tool use skill badge to demonstrate your proficiency in connecting models to external tools and APIs. This allows models to augment their knowledge, extend their capabilities and interact with external systems to take actions such as sending an email. A skill badge is an exclusive digital badge issued by Google Cloud in recognition of your proficiency with Google Cloud products and services and tests your ability to apply your knowledge in an interactive hands-on environment. Complete the assessment challenge lab, to receive a skill badge that you can share with your network. When you complete this course, you can earn the badge displayed here and claim it on Credly! Boost your cloud career by showing the world the skills you have developed!"

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중급 BigQuery ML을 사용한 예측 모델링을 위한 데이터 엔지니어링 기술 배지를 획득하여 Dataprep by Trifact로 데이터 변환 파이프라인을 BigQuery에 빌드, Cloud Storage, Dataflow, BigQuery를 사용한 ETL(추출, 변환, 로드) 워크플로 빌드, BigQuery ML을 사용하여 머신러닝 모델을 빌드하는 기술 역량을 입증할 수 있습니다.

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중급 BigQuery ML로 ML 모델 만들기 기술 배지 과정을 완료하면 BigQuery ML로 머신러닝 모델을 만들고 평가하여 데이터 예측을 수행하는 기술 역량을 입증할 수 있습니다.

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초급 Google Cloud에서 ML API용으로 데이터 준비하기 기술 배지를 완료하여 Dataprep by Trifacta로 데이터 정리, Dataflow에서 데이터 파이프라인 실행, Managed Service for Apache Spark에서 클러스터 생성 및 Apache Spark 작업 실행, Cloud Natural Language API, Google Cloud Speech-to-Text API, Video Intelligence API를 포함한 ML API 호출과 관련된 기술 역량을 입증하세요.

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이 과정에서는 AI 개인 정보 보호 및 안전에 관한 중요한 주제를 소개합니다. Google Cloud 제품과 오픈소스 도구를 사용하여 AI 개인 정보 보호 및 안전 권장사항을 구현하는 실용적인 방법과 도구를 살펴봅니다.

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이 과정에서는 AI 해석 가능성과 투명성의 개념을 소개합니다. 개발자와 엔지니어에게 AI 투명성이 얼마나 중요한지를 설명합니다. 데이터와 AI 모델 모두에서 해석 가능성과 투명성을 구현하는 데 도움이 되는 실용적인 방법과 도구를 살펴봅니다.

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이 과정에서는 책임감 있는 AI라는 개념과 AI 원칙을 소개합니다. 공정성과 편향을 실질적으로 식별하고 AI/ML 실무에서 편향을 완화하는 기법을 알아봅니다. Google Cloud 제품과 오픈소스 도구를 사용하여 책임감 있는 AI 권장사항을 구현하는 실용적인 방법과 도구를 살펴봅니다.

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생성형 AI 애플리케이션은 대규모 언어 모델(LLM)이 발명되기 전에는 불가능에 가까웠던 새로운 사용자 경험을 만들 수 있습니다. 어떻게 하면 애플리케이션 개발자가 생성형 AI를 사용해 Google Cloud에서 강력한 대화형 앱을 빌드할 수 있을까요? 이 과정에서는 생성형 AI 애플리케이션에 대해 알아보고 프롬프트 설계 및 검색 증강 생성(RAG)을 사용해 LLM 기반의 강력한 애플리케이션을 빌드하는 방법을 학습합니다. 생성형 AI 애플리케이션에 사용할 수 있는 프로덕션 레디 아키텍처를 살펴보고 LLM 및 RAG 기반 채팅 애플리케이션을 빌드합니다.

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이 과정은 머신러닝 실무자에게 생성형 AI 모델과 예측형 AI 모델을 평가하는 데 필요한 도구, 기술, 권장사항을 제공합니다. 모델 평가는 프로덕션 단계의 ML 시스템이 안정적이고 정확하고 성능이 우수한 결과를 제공할 수 있게 하는 중요한 분야입니다. 강의 참가자는 다양한 평가 측정항목, 방법, 각각 다른 모델 유형과 작업에 적합한 애플리케이션에 대해 깊이 있게 이해할 수 있습니다. 이 과정에서는 생성형 AI 모델의 고유한 문제를 강조하고 이를 효과적으로 해결하기 위한 전략을 소개합니다. 강의 참가자는 Google Cloud의 Vertex AI Platform을 활용해 모델 선택, 최적화, 지속적인 모니터링을 위한 견고한 평가 프로세스를 구현하는 방법을 알아볼 수 있습니다.

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이 과정은 입문용 마이크로 학습 과정으로, 대규모 언어 모델(LLM)이란 무엇이고, LLM을 활용할 수 있는 사용 사례로는 어떤 것이 있으며, 프롬프트 조정을 사용해 LLM 성능을 개선하는 방법은 무엇인지 알아봅니다. 또한 자체 생성형 AI 앱을 개발하는 데 도움이 되는 Google 도구에 대해서도 다룹니다.

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생성형 AI란 무엇이고 어떻게 사용하며 전통적인 머신러닝 방법과는 어떻게 다른지 설명하는 입문용 마이크로 학습 과정입니다. 직접 생성형 AI 앱을 개발하는 데 도움이 되는 Google 도구에 대해서도 다룹니다.

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이 과정에서는 생성형 AI 모델을 배포하고 관리할 때 MLOps팀이 직면하는 고유한 과제를 파악하는 데 필요한 지식과 도구를 제공하고 Vertex AI가 어떻게 AI팀이 MLOps 프로세스를 간소화하고 생성형 AI 프로젝트에서 성공을 거둘 수 있도록 지원하는지 살펴봅니다.

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