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Wiputdanai Pinkaew

Member since 2026

Silver League

3394 points
Perform Predictive Data Analysis in BigQuery Earned Nis 8, 2026 EDT
AI Boost Bites: Automate tasks with Gemini and Apps Script Earned Nis 7, 2026 EDT
Gemini for Cloud Architects Earned Nis 7, 2026 EDT
The Basics of Google Cloud Compute Earned Nis 7, 2026 EDT
Monitoring in Google Cloud Earned Nis 7, 2026 EDT
Use APIs to Work with Cloud Storage Earned Nis 7, 2026 EDT
Model Armor: Securing AI Deployments Earned Nis 4, 2026 EDT
Introduction to Security in the World of AI Earned Nis 4, 2026 EDT
Monitor and Log with Google Cloud Observability Earned Nis 4, 2026 EDT
Enhance Gemini Model Capabilities Earned Nis 3, 2026 EDT
Vector Search ve Yerleştirmeler Earned Nis 3, 2026 EDT
Vertex AI'da İstem Tasarımı Earned Nis 3, 2026 EDT
Agent Assist and its Gen AI Capabilities Earned Nis 2, 2026 EDT
Build AI Agents with Enterprise Databases Earned Nis 2, 2026 EDT
Deploy Multi-Agent Architectures Earned Nis 2, 2026 EDT

Complete the intermediate Perform Predictive Data Analysis in BigQuery skill badge course to demonstrate skills in the following: creating datasets in BigQuery by importing CSV and JSON files; harnessing the power of BigQuery with sophisticated SQL analytical concepts, including using BigQuery ML to train an expected goals model on soccer event data and evaluate the impressiveness of World Cup goals.

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This video covers how to use Gemini and Apps Script to automate manual tasks across Google Workspace. You'll learn to prompt Gemini to generate Apps Script code that automatically drafts email reminders in Google Sheets for tasks not marked 'Complete.' Automate your workflow with little to no technical expertise, freeing up time for more important work and eliminating manual follow-ups.

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In this course, you learn how Gemini, a generative AI-powered collaborator from Google Cloud, helps administrators provision infrastructure. You learn how to prompt Gemini to explain infrastructure, deploy GKE clusters and update existing infrastructure. Using a hands-on lab, you experience how Gemini improves the GKE deployment workflow. Duet AI was renamed to Gemini, our next-generation model.

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Earn a skill badge by completing the The Basics of Google Cloud Compute skill badge course, where you learn how to work with virtual machines (VMs), persistent disks, and web servers using Compute Engine.

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Complete the introductory Monitoring in Google Cloud skill badge course to demonstrate skills in the following: using Cloud Monitoring tools to monitor resources on Google Cloud.

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Complete the introductory Use APIs to Work with Cloud Storage skill badge to demonstrate skills in the following: using APIs to work with Cloud Storage resources, including the Cloud Storage API.

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This course reviews the essential security features of Model Armor and equips you to work with the service. You’ll learn about the security risks associated with LLMs and how Model Armor protects your AI applications.

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Artificial Intelligence (AI) offers transformative possibilities, but it also introduces new security challenges. This course equips security and data protection leaders with strategies to securely manage AI within their organizations. Learn a framework for proactively identifying and mitigating AI-specific risks, protecting sensitive data, ensuring compliance, and building a resilient AI infrastructure. Pick use cases from four different industries to explore how these strategies apply in real-world scenarios.

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Complete the introductory Monitor and Log with Google Cloud Observability skill badge course to demonstrate skills in the following: monitoring virtual machines in Compute Engine, utilizing Cloud Monitoring for multi-project oversight, extending monitoring and logging capabilities to Cloud Functions, creating and sending custom application metrics, and configuring Cloud Monitoring alerts based on custom metrics.

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Complete the intermediate Enhance Gemini Model Capabilities skill badge to demonstrate skills in the following: leveraging advanced features of Gemini models, including code generation and execution, grounding, controlled content generation, and synthetic data creation, to build more powerful and sophisticated AI applications.

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Bu kursta yapay zeka destekli arama teknolojileri, araçları ve uygulamalarını keşfedeceksiniz. Vektör yerleştirmelerinin kullanıldığı semantik aramayı, semantik ve anahtar kelime yaklaşımlarının birleştirildiği karma aramayı ve yapay zeka temsilcisini temellendirerek yapay zeka halüsinasyonlarının en aza indirildiği veriyle artırılmış üretimi (RAG) öğrenin. Akıllı arama motorunuzu oluşturmak için Vertex AI Vector Search'ü uygulamalı olarak deneyin.

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Vertex AI'da istem mühendisliği, görüntü analizi ve çok modlu üretken teknikler gibi becerileri göstermek için Vertex AI'da İstem Tasarımı beceri rozetini tamamlayın. Etkili istemlerin nasıl oluşturulacağını, üretken yapay zeka çıktılarına nasıl rehberlik edileceğini ve Gemini modellerinin gerçek dünyadaki pazarlama senaryolarına nasıl uygulanacağını keşfedin.

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Unlock the power of generative AI to create intelligent, automated agents. After completing this course, you'll be equipped to develop a data store agent that can instantly answer complex questions by automatically extracting and synthesizing information from your websites, documents, or structured data. Say goodbye to static FAQs—your new agent will provide dynamic, accurate answers and even surface the original source URLs, all with a simple and rapid setup.

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Build AI agents that can leverage enterprise databases using the MCP Toolbox for Databases. You will define secure database interaction tools, and implement intelligent querying capabilities (leveraging vector embeddings, structured queries).

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Complete the advanced Deploy Multi-Agent Architectures skill badge to demonstrate skills in the following: building multi-agent systems with ADK, connecting agents with the Agent-to-Agent (A2A) protocol, integrating external tools using the Model Context Protocol (MCP), and deploying a complete multi-agent solution to Agent Engine.

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