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Pankaj Yadav

Member since 2026

Diamond League

3979 points
Google DeepMind: 02 Represent Your Language Data Earned Mar 21, 2026 EDT
建立您的第一個 Gemini Enterprise 應用程式 Earned Mar 16, 2026 EDT
企業 AI 代理與用途 Earned Mar 16, 2026 EDT
AI 代理基礎知識 Earned Mar 15, 2026 EDT
Google DeepMind: Train A Small Language Model Earned Mar 14, 2026 EDT
AI 代理簡介 Earned Mar 12, 2026 EDT
Google DeepMind: 01 Build Your Own Small Language Model Earned Mar 10, 2026 EDT

In this Google DeepMind course you will learn how to prepare text data for language models to process. You will investigate the tools and techniques used to prepare, structure, and represent text data for language models, with a focus on tokenization and embeddings. You will be encouraged to think critically about the decisions behind data preparation, and what biases within the data may be introduced into models. You will analyze trade-offs, learn how to work with vectors and matrices, how meaning is represented in language models. Finally, you will practice designing a dataset ethically using the Data Cards process, ensuring transparency, accountability, and respect for community values in AI development.

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建立您的第一個 Gemini Enterprise 應用程式,獲得技能徽章!將各種資料來源連接到您的應用程式,建立強大的統合式搜尋和分析引擎。掌握 Deep Research 代理、多代理構思和 NotebookLM 等進階功能,進行重點分析。

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瞭解 AI 代理如何發揮更高的業務影響力,包括根據您的 KPI 規劃要使用的代理類型,以及探索能解決實際瓶頸的用途。您也將認識各種無程式碼到高程式碼解決方案,瞭解 Gemini Enterprise 如何協助建構和自動調度合適的代理。

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本課程介紹 AI 代理的基礎知識,並探討代理的實際應用價值。代理可為開發人員、架構師和技術決策者奠定基礎,協助他們從目標導向的自主行為角度來理解 AI 系統。

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Complete the advanced Google DeepMind: Train A Small Language Model skill badge by completing this course to demonstrate skills in the following: formulating real-world language model research problems; building a simple tokenizer; preparing a dataset for training a transformer language model; running the training loop of a small language model. Access this lab at no-cost by signing up for the no-cost subscription. Receive 35 free credits each month!

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瞭解 AI 代理的概念,探索代理如何藉由自主行動及推論解決複雜問題。您將瞭解代理如何透過模型、工具和調度管理程序等技術架構,助您學習、規劃和實現目標。

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In this Google DeepMind course, you will learn the fundamentals of language models and gain a high-level understanding of the machine learning development pipeline. You will consider the strengths and limitations of traditional n-gram models and advanced transformer models. Practical coding labs will enable you to develop insights into how machine learning models work and how they can be used to generate text and identify patterns in language. Through real-world case studies, you will build an understanding around how research engineers operate. Drawing on these insights you will identify problems that you wish to tackle in your own community and consider how to leverage the power of machine learning responsibly to address these problems within a global and local context.

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