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vinod soni

Member since 2025

Diamond League

14612 points
Extend Gemini with controlled generation and Tool use Earned Apr 18, 2026 EDT
使用 BigQuery ML 為預測模型進行資料工程 Earned Feb 20, 2026 EST
Improve customer and agent satisfaction with Agent Assist Earned Feb 7, 2026 EST
Integrate Agent Assist with Telephony and Chatbot Systems Earned Feb 7, 2026 EST
Introduction to Agent Assist and its GenAI Capabilities Earned Feb 1, 2026 EST
Build search and recommendations applications with AI Applications Earned Jan 19, 2026 EST
Responsible AI for Digital Leaders with Google Cloud Earned Jan 13, 2026 EST
Empower Gen AI Apps with Tool Use Earned Dec 31, 2025 EST
Supervised Fine-tuning for Gemini Earned Dec 30, 2025 EST
機器學習運作 (MLOps) 與 Vertex AI:模型評估 Earned Dec 30, 2025 EST
Model evaluation on Vertex AI Earned Dec 30, 2025 EST
Extend CX Agents with Vertex AI Search data stores Earned Dec 29, 2025 EST
Incorporate Generative Features into Conversational Agent Flows Earned Dec 29, 2025 EST
Create Conversational Agents with Stateful Flows Earned Dec 29, 2025 EST
Find, Explore and Deploy Model Garden Models Earned Dec 29, 2025 EST
Deploy a RAG application with vector search in Firestore Earned Dec 28, 2025 EST
Generative Playbooks Earned Dec 26, 2025 EST
Introduction to Gemini Enterprise for Customer Experience Earned Dec 26, 2025 EST
Customer Experience with Google AI Architecture Earned Dec 26, 2025 EST
Text Prompt Engineering Techniques Earned Dec 26, 2025 EST
Engineer Effective Prompts for Generative Models Earned Dec 26, 2025 EST
Explore Google's Gen AI Models Earned Dec 26, 2025 EST
Create and maintain Vertex AI Search data stores Earned Dec 26, 2025 EST
Model Armor:保護您部署的 AI 應用程式 Earned Dec 25, 2025 EST
AI 基礎架構:網路技術 Earned Dec 25, 2025 EST
AI 基礎架構:儲存空間選項 Earned Dec 25, 2025 EST
AI 基礎架構:部署類型 Earned Dec 25, 2025 EST
AI 基礎架構:Cloud TPU Earned Dec 24, 2025 EST
AI 基礎架構:Cloud GPU Earned Dec 24, 2025 EST
AI 基礎架構:AI Hypercomputer 簡介 Earned Dec 24, 2025 EST
Build generative virtual agents with API integrations Earned Dec 23, 2025 EST
Implement Hybrid Search Earned Dec 22, 2025 EST
Implement RAG with Vertex AI Earned Dec 22, 2025 EST
運用 BigQuery 建立嵌入項目、向量搜尋和 RAG Earned Dec 19, 2025 EST
在 Vertex AI 設計提示 Earned Dec 13, 2025 EST
運用 Vertex AI 和 Flutter 打造生成式 AI 代理 Earned Nov 26, 2025 EST
Architect Customer Engagement Suite with Google AI Earned Nov 25, 2025 EST
Gemini Enterprise 簡介 Earned Nov 25, 2025 EST
Deploy an Agent with Agent Development Kit (ADK) Earned Nov 20, 2025 EST
運用 Agent Development Kit (ADK) 與 Agent Engine 部署多代理系統 Earned Nov 19, 2025 EST

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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完成使用 BigQuery ML 為預測模型進行資料工程技能徽章中階課程, 即可證明自己具備下列知識與技能:運用 Dataprep by Trifacta 建構連至 BigQuery 的資料轉換 pipeline; 使用 Cloud Storage、Dataflow 和 BigQuery 建構「擷取、轉換及載入」(ETL) 工作負載, 以及使用 BigQuery ML 建構機器學習模型。

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Complete the Improve customer and agent satisfaction with Agent Assist skill badge to demonstrate your proficiency in configuring basic conversational agents that can escalate actions to human agents, and configuring Agent Assist to help human agents with customer queries. You prove your knowledge in configuring Generators for summarization, classification and recommendation of tickets as well leverage tools such as Generative Knowledge Assist, to provide further context to human agents. 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 course you will learn how Agent Assist can enhance the productivity of human agents while interacting with customers through the voice channel, as well as the options available for integration with other platforms in the Conversational AI ecosystem.

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This course will focus on Agent Assist, an AI-powered tool designed to enhance customer service interactions. In this course, you will learn how Agent Assist can enhance the productivity of human agents while interacting with customers through the chat channel. You’ll learn how to take full advantage of Agent Assist from Gemini Enterprise for Customer Experience, and its range of Gen AI features and functionality.

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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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This course equips learners with the essential knowledge and practical tools to develop and implement artificial intelligence (AI) responsibly. Through an exploration of ethical considerations, best practices, and governance procedures, participants will gain an understanding of how to navigate the complex landscape of AI while upholding ethical standards and minimizing potential risks.

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An LLM-based application can process language in a way that resembles thought. But if you want to extend its capabilities to take actions by running other functions you have coded, you will need to use function calling. This can also be referred to as tool use. Additionally, you can give a model the ability to search Google or search a data store of documents to ground its responses. In other words, to base its answers on that information. In this course, you’ll explore these concepts.

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With this course you will learn how to use different techniques to fine-tune Gemini. Model tuning is an effective way to customize large models like Gemini for your specific tasks. It's a key step to improve the model's quality and efficiency. This course will give an overview of model tuning, describe the tuning options available for Gemini, help you determine when each tuning option should be used and how to perform tuning.

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本課程針對評估生成式和預測式 AI 模型,向機器學習從業人員介紹相關的基礎工具、技術和最佳做法。模型評估是機器學習的重要領域,確保這類系統能在正式環境中提供可靠、準確且成效優異的結果。 學員將深入瞭解多種評估指標與方法,以及適用於不同模型類型和工作的應用方式。此外,也會特別介紹生成式 AI 模型帶來的獨特難題,並提供有效的應對策略。透過 Google Cloud Vertex AI 平台,學員將瞭解在模型挑選、最佳化和持續監控方面,該如何導入穩健的評估程序。

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This course delves into the complexities of assessing the quality of large language model outputs. It examines the challenges enterprises face due to the subjective and sometimes incorrect nature of LLM responses, including hallucinations and inconsistent results. The course introduces various evaluation metrics for different tasks like classification, text generation, and question answering, such as Accuracy, Precision, Recall, F1 score, ROUGE, BLEU, and Exact Match. It also explores evaluation methods offered by Vertex AI LLM Evaluation Services, including computation-based, autorater, and human evaluation, providing insights into their application and benefits. Finally, the module covers how to unit test LLM applications within Vertex AI.

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In this course, you'll learn to develop AI agents that answer questions using websites, documents, or structured data. You will explore AI Applications and understand the advantages of data store agents, including their scalability and security. You'll learn about different data store types and also discover how to connect data stores to agents and add personalization for enhanced responses. Finally, you'll gain insights into common search configurations and troubleshooting techniques.

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Explore the Generative AI features for Conversational Agents and how to incorporate them into stateful Flows. Discover the possibilities with Generators, Generative Fallback, and Data Stores, as well as best practices and security settings for using these features.

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Discover flows in Conversational Agents and learn how to build deterministic chat and voice experiences with language models. Explore key concepts like drivers, intents, and entities, and how to use them to create conversational agents.

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Model Garden is a model library that helps you discover, test, and deploy models from Google and Google partners. Learn how to explore the available models and select the right ones for your use case. And how to deploy and interact with Model Garden models through the Google Cloud console and APIs.

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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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Explore Playbooks and their implementation of the ReAct pattern for building conversational agents. You will learn how to construct a Playbook, set up goals and instructions to build a chatbot in natural language, and learn to test and deploy your solution.

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This course explores the different products and capabilities of Gemini Enterprise for Customer Experience, including CX Agent Studio, Agent Assist and CX Insights. Additionally, it covers the foundational principles of conversation design to craft engaging and effective experiences that emulate human-like experiences specific to the Chat channel.

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In this course you will learn the key architectural considerations that need to be taken into account when designing for the implementation of Conversational AI solutions.

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Text Prompt Engineering Techniques introduces you to consider different strategic approaches & techniques to deploy when writing prompts for text-based generative AI tasks.

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

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Learn how to leverage Gemini multimodal capabilities to process and generate text, images, and audio and to integrate Gemini through APIs to perform tasks such as content creation and summarization.

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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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本課程將複習 Model Armor 的基本安全功能,讓您具備使用這項服務的能力。您將瞭解 LLM 的相關安全風險,以及 Model Armor 如何保護 AI 應用程式。

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歡迎來到「AI 基礎架構:網路技術」課程。本課程將說明如何運用 Google Cloud 的高頻寬、低延遲基礎架構,最佳化調整 AI 系統所有元件之間的資料傳輸和通訊。最後,您將掌握網路在整個 AI 管道 (從資料擷取、訓練到推論) 發揮的關鍵作用,並採取最佳做法,確保工作負載能以最高速度運作。

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在本課程中,您將全面瞭解 Google Cloud 提供的儲存空間解決方案,專門用於 AI 和高效能運算 (HPC) 的工作負載。您將學習如何根據機器學習生命週期的各個階段,選擇合適的儲存空間;以及探索如何在訓練期間將 I/O 效能最佳化、管理準備資料所需的龐大資料集,以及用低延遲提供模型構件。透過實際例子和示範,您將掌握專業知識,得以設計穩健的儲存空間解決方案,並加快 AI 創新。

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這堂課程會完整說明如何在 Google Cloud 部署、管理及最佳化調整 AI 和高效能運算 (HPC) 工作負載。藉由一系列課堂和實務示範,您會瞭解不同的部署策略,從使用 Google Compute Engine (GCE) 的高度可自訂環境,到 Google Kubernetes Engine (GKE) 等代管解決方案。具體來說,您會學到如何建立叢集及部署 GKE,以便執行推論工作。

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歡迎來到 Cloud TPU 課程。我們將探討在各種情境下使用 TPU 的優缺點,並比較不同的 TPU 加速器,協助您選擇合適的工具。您將瞭解如何盡可能提高 AI 模型的效能和效率,以及互通的 GPU/TPU 對於打造靈活的機器學習工作流程有多重要。我們會透過引人入勝的內容和實際演示,一步步引導您有效運用 TPU。

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想瞭解 AI 背後的強大硬體嗎?本單元將深入解析針對效能最佳化的 AI 電腦,說明其重要性。我們將探討 CPU、GPU 和 TPU 如何大幅加速 AI 任務運算,分析各自的特點,以及 AI 軟體如何充分利用這些硬體效能。單元結束後,您將清楚掌握如何根據 AI 專案挑選合適的 GPU,並做出明智的 AI 工作負載決策。

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準備開始使用 AI Hypercomputer 了嗎?這門課程可讓您快速上手!我們將介紹這個架構的基本概念,以及此架構如何幫助 AI 處理 AI 工作負載。您將瞭解 Hypercomputer 內的不同元件,例如 GPU、TPU 和 CPU,以及如何視需求選擇合適的部署方法。

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Demonstrate the ability to create and deploy generative virtual agents with natural language using Vertex AI Agent Builder and augment responses by integrating Gemini responses with third party APIs and your own data stores You will use the following technologies and Google Cloud services: Vertex AI Agent Builder Gemini Cloud Functions

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Learn how to create Hybrid Search applications using Vertex AI Vertex Search to combine semantic searching with keyword search to return results based on both semantic meaning and keyword matching.

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Learn how to build your own Retrieval-Augmented Generation (RAG) solutions for greater control and flexibility than out-of-the-box implementations. Create a custom RAG solution using Vertex AI APIs, vector stores, and the LangChain framework.

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這堂課程會說明 BigQuery 中的檢索增強生成 (RAG) 解決方案,協助您減少 AI 幻覺。當中介紹的 RAG 工作流程包含建立嵌入項目、搜尋向量空間,以及生成更符合需求的答案。另外,這堂課程會解釋這些步驟背後的概念與原因,以及實際運用 BigQuery 實作的方法。完成課程之後,學員將學會使用 BigQuery,以及 Gemini 和嵌入模型等生成式 AI 模型,建立 RAG pipeline 來處理自己的 AI 幻覺應用實例。

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完成 在 Vertex AI 設計提示 技能徽章入門課程,即可證明您具備下列技能: 在 Vertex AI 設計提示、分析圖片,以及運用多模態模型生成內容。瞭解如何建立有效的提示、引導生成式 AI 輸出內容, 以及將 Gemini 模型用於實際的行銷情境。

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本課程會說明如何使用 Google 可攜式 UI 工具包 Flutter 來開發應用程式,並將應用程式與 Google 生成式 AI 模型系列 Gemini 整合。您也會用到 Vertex AI Agent Builder,此為建構及管理 AI 代理和應用程式的 Google 平台。

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In this course, you'll dive deep into the essential topics you need to know to design, build, and maintain a powerful CES solution. Get ready to transform your understanding of what's possible and create an architecture that drives customer satisfaction. This course is designed to introduce you to the architecture of the Customer Engagement Suite (CES). You'll explore the main considerations for building and implementing Conversational AI solutions including key architectural components and integrations. You'll also explore how Conversational AI interacts with Vertex AI and get a high-level overview of the key features of the Conversational AI Platform.

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本課程介紹 Gemini Enterprise,這個強大的平台結合 AI 代理、企業搜尋工具、NotebookLM 和智慧資料存取功能,可協助組織解決難題。學員將能透過實際案例和練習,瞭解 Gemini Enterprise 功能如何滿足實際業務需求、描述平台架構,並說明如何根據不同職務處理資料存取與隱私權事宜。

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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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本課程說明如何使用 Google Agent Development Kit 建構複雜的多代理系統。您將建構配備工具的虛擬服務專員,並透過從屬關係和流程定義互動方式。您將在本機執行代理,並部署至 Vertex AI Agent Engine,透過代管代理流程執行;Agent Engine 則處理基礎架構決策和資源調度作業。 請注意,這些實驗室是根據這項產品的預先發布版製成。我們會進行維護更新,因此這些研究室將可能出現延遲。

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