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Roman Sribniy

회원 가입일: 2025

실버 리그

1701포인트
Compute Engine에서 Cloud Load Balancing 구현하기 Earned 6월 23, 2026 EDT
Google Cloud Observability로 모니터링 및 로깅 Earned 6월 19, 2026 EDT
Arcade Adventure: App Dev and Cloud Observability Earned 6월 19, 2026 EDT
Google Cloud 앱 개발 환경 설정 Earned 6월 19, 2026 EDT
Sensitive Data Protection 시작하기 Earned 6월 19, 2026 EDT
Arcade Trail: Data Engineering and Information Protection Earned 6월 19, 2026 EDT
Google Cloud에서 ML API용으로 데이터 준비하기 Earned 6월 18, 2026 EDT
Work Meets Play: Expressive Efficiency Earned 5월 28, 2026 EDT
생성형 AI를 위한 머신러닝 작업(MLOps) Earned 12월 30, 2025 EST
AI Boost Bites: Personalization with customized prompts Earned 12월 30, 2025 EST
AI Boost Bites: TL;DR with Gemini in Docs & Drive Earned 12월 30, 2025 EST
AI Boost Bites: Prompting like a Pro with Google Workspace Earned 12월 30, 2025 EST
AI Boost Bites: Content Generation with Gemini Made Easy Earned 12월 30, 2025 EST
AI Boost Bites: Customer insights with NotebookLM Earned 12월 30, 2025 EST
AI Boost Bites: Gemini Gems – Your ultimate marketing sidekick Earned 12월 29, 2025 EST

초급 Compute Engine에서 Cloud Load Balancing 구현하기 기술 배지 과정을 완료하여 Compute Engine에서 가상 머신 만들기 및 배포, 네트워크 및 애플리케이션 부하 분산기 구성과 관련된 기술 역량을 입증하세요.

자세히 알아보기

초급 Google Cloud Observability로 모니터링 및 로깅 기술 배지를 획득하여 Compute Engine에서 가상 머신 모니터링, Cloud Monitoring을 활용한 다중 프로젝트 감독, Cloud Functions로 모니터링 및 로깅 기능 확장, 커스텀 애플리케이션 측정항목 생성 및 전송, 커스텀 측정항목을 기반으로 Cloud Monitoring 알림 구성 등의 기술을 입증하세요.

자세히 알아보기

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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Google Cloud 앱 개발 환경 설정 과정을 완료하여 기술 배지를 획득하세요. Cloud Storage, Identity and Access Management, Cloud Functions, Pub/Sub의 기본 기능을 사용하여 스토리지 중심 클라우드 인프라를 구축하고 연결하는 방법을 배울 수 있습니다.

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초급 Sensitive Data Protection 시작하기 기술 배지 과정을 완료하여 Sensitive Data Protection 서비스(Cloud Data Loss Prevention API 포함)를 사용해 Google Cloud의 민감한 정보를 검사, 수정, 익명화하는 기술을 입증할 수 있습니다.

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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.

자세히 알아보기

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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As platforms grow, maintaining speed, reliability, and seamless user experiences becomes critical. Inspired by Bobble AI and its journey to support millions of real-time interactions, this challenge explores how cloud-native systems are designed for efficiency at scale. You’ll work with Docker and Kubernetes to run and orchestrate applications, while also using IAM, Cloud Storage, and Monitoring to manage access, data, and performance. The result: a clearer view of how the right mix of containers, automation, and observability keeps modern applications fast, resilient, and efficient.

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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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This video covers how to personalize your Gemini results in Google Workspace. Learn to incorporate documents and research papers directly into your prompts using the "@" symbol to get more targeted and relevant AI output tailored to your needs.

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This video covers how you can use Gemini to summarize long documents in Google Workspace, so you can quickly get the information you need and save time. You'll learn how to use Gemini to summarize entire documents or just selected text, as well as how to use Gemini in Drive to summarize across multiple files.

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This video covers prompt engineering fundamentals for effective AI communication. Learn a simple framework (Persona, Task, Context, Format) to craft clear prompts, getting better, faster results from Gemini in Google Workspace. Discover how to use natural language, be specific, and iterate for optimal AI assistance.

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This video will cover how you can leverage Gemini's advanced AI capabilities in Google Docs to brainstorm ideas, draft various marketing content, and collaborate with your team.

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This video covers how NotebookLM can revolutionize customer insight gathering from call or chat transcripts. You'll learn to upload PDF transcripts of hundreds of conversations (even multilingual ones!) and quickly extract key themes, trending topics, and actionable insights without listening for hours. Discover how to save findings, share notebooks, and even generate interactive podcast summaries of your data.

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This video covers how to create your own Gemini Gems, advanced AI capabilities that can automate repetitive tasks and supercharge your productivity.

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