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Jose Regish

Menjadi anggota sejak 2025

Bronze League

617 poin
Mendapatkan Insight dari Data BigQuery Earned Agu 30, 2026 EDT
Arcade Re-Trail: Vaults & Vectors Earned Agu 23, 2026 EDT
Pengantar Model Bahasa Besar Earned Agu 16, 2026 EDT
Pengantar Responsible AI Earned Agu 16, 2026 EDT
Mengorkestrasi Alur Kerja Multi-agen dengan Gemini Enterprise Earned Agu 16, 2026 EDT
Membuat Aplikasi Gemini Enterprise Pertama Anda Earned Agu 16, 2026 EDT
Google DeepMind: Train A Small Language Model Earned Jun 22, 2026 EDT
Work Meets Play: Cloud Canvas Earned Jun 22, 2026 EDT
Arcade Adventure: App Dev and Cloud Observability Earned Jun 21, 2026 EDT
Arcade Voyage: Identity Management and Pre-trained AI APIs Earned Jun 20, 2026 EDT
Arcade Trail: Data Engineering and Information Protection Earned Jun 20, 2026 EDT

Selesaikan badge keahlian pengantar Mendapatkan Insight dari Data BigQuery untuk menunjukkan keterampilan dalam hal berikut: menulis kueri SQL, membuat kueri tabel publik, memuat sampel data ke dalam BigQuery, memecahkan masalah error sintaksis umum dengan validator kueri di BigQuery, dan membuat laporan di Data Studio dengan menghubungkannya ke data BigQuery.

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Since last month's Arcade Trail wrapped up earlier than expected, we’re opening up this bonus game only for this month so you can grab that missed Arcade Point! You'll start on the vault side with Google Cloud Storage—managing buckets, exploring APIs, and locking down sensitive data with Bucket Lock. Then, you'll shift to event-driven vectors at the command line, triggering Cloud Run Functions and routing real-time messages through Pub/Sub. Complete with two hands-on challenge labs, this trail gets your streak back on track while building real-world storage and serverless skills.

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Ini adalah kursus pengantar pembelajaran mikro yang membahas definisi model bahasa besar (LLM), kasus penggunaannya, dan cara menggunakan prompt tuning untuk meningkatkan performa LLM. Kursus ini juga membahas beberapa alat Google yang dapat membantu Anda mengembangkan aplikasi AI Generatif Anda sendiri.

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Ini adalah kursus pengantar pembelajaran mikro yang dimaksudkan untuk menjelaskan responsible AI, alasan pentingnya responsible AI, dan cara Google mengimplementasikan responsible AI dalam produknya. Kursus ini juga memperkenalkan 7 prinsip AI Google.

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Selesaikan kursus badge keahlian pengantar Mengorkestrasi Alur Kerja Multi-Agen dengan Gemini Enterprise untuk menunjukkan keahlian dalam hal berikut: menggunakan asisten agentic yang didukung oleh Gemini Enterprise untuk menyatukan data di seluruh sumber pihak pertama dan ketiga, mengembangkan materi marketing multimedia, serta mengotomatiskan tindakan bisnis di seluruh sistem. Badge keahlian akan memvalidasi pengetahuan praktis Anda terkait produk tertentu melalui lab interaktif dan penilaian tantangan. Dapatkan badge dengan menyelesaikan kursus atau langsung ikuti Challenge Lab untuk mendapatkan badge Anda hari ini. Badge membuktikan kemahiran Anda, meningkatkan profil profesional Anda, dan pada akhirnya membantu meningkatkan peluang karier Anda. Buka profil Anda untuk memantau badge yang telah Anda peroleh.

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Buat aplikasi Gemini Enterprise pertama Anda! Hubungkan beragam sumber data ke aplikasi Anda untuk membangun mesin telusur dan mesin analisis terpadu yang andal. Kuasai kemampuan tingkat lanjut seperti agen Deep Research, pencarian ide multi-agen, dan NotebookLM untuk analisis terfokus.

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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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Great ideas come to life when creativity meets the right tools. Inspired by how Adobe connects its creative universe with Google Workspace to boost collaboration, this challenge shows you how to build seamless, efficient workflows. You’ll start with the basics of setting up shared spaces in Google Drive, managing communications in Gmail, and building no-code apps with AppSheet. From there, you'll connect your workspace to powerful data tools—using Apps Script to automate tasks across Sheets and Maps, analyzing massive datasets with Connected Sheets, and sending that data directly into slide presentations. By the end, you'll know how to bridge the gap between data and design to keep your projects running smoothly.

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Writing code is just the first step; you also need to know how to deploy it smoothly and keep it running at its best. In this adventure, you’ll get started with serverless setups by running code on Cloud Run Functions and connecting your services using Google Cloud Pub/Sub. From there, you'll work on the operations side—building out clean development environments, keeping tabs on multiple projects at once, and setting up smart alerts so you can spot and fix issues early. With a couple of challenge labs thrown into the mix, you’ll walk away with the skills needed to build, monitor, and scale apps on Google Cloud.

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Keeping your cloud resources secure and making your apps smarter are two essential skills for any cloud developer. In this voyage, you’ll start with the security fundamentals, learning how to configure service accounts, manage IAM permissions using gcloud, and set up custom roles. Once you've secured your environment, you'll work with Google Cloud's pre-trained AI tools—converting text to synthetic speech, translating languages on the fly, and transcribing audio files into text. Complete with two practical challenge labs to test your skills, you'll walk away knowing how to safely manage access to your cloud project while adding powerful language and speech features to your applications.

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Raw data is only useful if it is clean, structured, and secure. In this track, you’ll start by processing and preparing data using Dataprep, Dataflow templates, and Apache Spark. You'll learn how to clean up datasets so they are ready for machine learning models. From there, you'll focus on security by working with tools that find and mask sensitive information like personal IDs and credentials. You'll practice redacting critical details and creating safe, de-identified copies of your data in Cloud Storage. By finishing the hands-on challenge labs, you’ll show you can handle big data workflows while keeping confidential information completely safe.

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