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Goutham Ummadisetty

회원 가입일: 2025

골드 리그

7283포인트
Google Cloud 컴퓨팅 기초: 클라우드 컴퓨팅 기초 Earned 2월 4, 2026 EST
생성형 AI 소개 Earned 2월 4, 2026 EST
Google Security Operations - Fundamentals Earned 1월 8, 2026 EST
Google DeepMind: 03 Design And Train Neural Networks Earned 11월 12, 2025 EST
Snowflake to BigQuery Migration Earned 11월 12, 2025 EST
Generative AI Fundamentals Earned 11월 12, 2025 EST
Introduction to AI Applications Earned 11월 11, 2025 EST
Vertex AI로 머신러닝 작업(MLOps): 모델 평가 Earned 11월 11, 2025 EST
Model evaluation on Vertex AI Earned 11월 3, 2025 EST
Integrate Agent Assist with Telephony and Chatbot Systems Earned 10월 31, 2025 EDT
Create Data Stores for Gen AI Applications Earned 10월 29, 2025 EDT
Introduction to Agent Assist and its GenAI Capabilities Earned 10월 29, 2025 EDT

Google Cloud 컴퓨팅 기초 과정은 클라우드 컴퓨팅에 대한 배경지식 또는 경험이 거의 없는 개인을 대상으로 합니다. 이 과정은 클라우드 기본사항, 빅데이터, 머신러닝에 대한 핵심 개념을 간략히 설명하고 Google Cloud의 적용 위치 및 방식에 대한 개요를 제공합니다. 일련의 과정을 마친 학습자는 이러한 개념을 명확하게 설명하고 몇 가지 실무 기술 역량을 입증할 수 있게 됩니다. 과정은 다음 순서대로 완료해야 합니다. 1. Google Cloud 컴퓨팅 기초: 클라우드 컴퓨팅 기초 2. Google Cloud 컴퓨팅 기초: Google Cloud의 인프라 3. Google Cloud 컴퓨팅 기초: Google Cloud의 네트워킹 및 보안 4. Google Cloud 컴퓨팅 기초: Google Cloud의 데이터, 머신러닝, AI 첫 번째 과정에서는 클라우드 컴퓨팅, Google Cloud 사용 방법, 다양한 컴퓨팅 옵션에 대한 개요를 제공합니다.

자세히 알아보기

생성형 AI란 무엇이고 어떻게 사용하며 전통적인 머신러닝 방법과는 어떻게 다른지 설명하는 입문용 마이크로 학습 과정입니다. 직접 생성형 AI 앱을 개발하는 데 도움이 되는 Google 도구에 대해서도 다룹니다.

자세히 알아보기

This course covers the baseline skills needed for the Google Security Operations Platform. The modules will cover specific actions and features that security engineers should become familiar with to start using the toolset.

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In this Google DeepMind course you will focus on the training process for machine learning models. You will learn how to spot and mitigate issues when training a model, such as overfitting and underfitting. In practical coding labs, you will implement and evaluate the multilayer perceptron for simple classification tasks. This will provide insights into the mechanics of training a neural network model and the backpropagation algorithm. Research case studies will demonstrate how neural networks power real-world models. Additionally, you will consider the broader social impacts of innovation by looking beyond immediate benefits to anticipate potential risks, safety concerns, and further-reaching societal consequences.

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This workload aims to upskill Google Cloud partners to perform specific tasks associated with priority workloads. Learners will perform the tasks of migrating data from Snowflake to BigQuery. Sample data will be used during the migration. Learners will complete several labs that focus on the process of transferring schema, data and related processes to corresponding Google Cloud products.There will be one or more challenge labs that will test the learners' understanding of the topics. "This learning path aims to upskill Google Cloud partners to perform specific tasks associated with priority workloads. Learners will perform the tasks of migrating data from Snowflake to BigQuery.

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Earn a skill badge by passing the final quiz, you'll demonstrate your understanding of foundational concepts in generative AI. A skill badge is a digital badge issued by Google Cloud in recognition of your knowledge of Google Cloud products and services. Share your skill badge by making your profile public and adding it to your social media profile.

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This course introduces AI Applications. You will learn about the types of apps that you can create using AI Applications, the high-level steps that its data stores automate for you, and what advanced features can be enabled for Search apps. (Please note Gemini Enterprise was previously named Google Agentspace, there may be references to the previous product name in this course.)

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이 과정은 머신러닝 실무자에게 생성형 AI 모델과 예측형 AI 모델을 평가하는 데 필요한 도구, 기술, 권장사항을 제공합니다. 모델 평가는 프로덕션 단계의 ML 시스템이 안정적이고 정확하고 성능이 우수한 결과를 제공할 수 있게 하는 중요한 분야입니다. 강의 참가자는 다양한 평가 측정항목, 방법, 각각 다른 모델 유형과 작업에 적합한 애플리케이션에 대해 깊이 있게 이해할 수 있습니다. 이 과정에서는 생성형 AI 모델의 고유한 문제를 강조하고 이를 효과적으로 해결하기 위한 전략을 소개합니다. 강의 참가자는 Google Cloud의 Vertex AI Platform을 활용해 모델 선택, 최적화, 지속적인 모니터링을 위한 견고한 평가 프로세스를 구현하는 방법을 알아볼 수 있습니다.

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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 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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Data stores represent a simple way to make content available to many types of generative AI applications, including search applications, recommendations engines, Gemini Enterprise apps, Agent Development Kit agents, and apps built with Google Gen AI or LangChain SDKs. Connect data from many sources include Cloud Storage, Google Drive, chat apps, mail apps, ticketing systems, third-party file storage providers, Salesforce, and many more.

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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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