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Luana Brito

Menjadi anggota sejak 2022

Silver League

3480 poin
Panduan Awal Menggunakan Dataplex Earned Agu 8, 2023 EDT
Serverless Data Processing with Dataflow: Foundations Earned Apr 12, 2023 EDT
Smart Analytics, Machine Learning, and AI on Google Cloud Earned Apr 10, 2023 EDT
Build Streaming Data Pipelines on Google Cloud Earned Feb 28, 2023 EST
Build Data Lakes and Data Warehouses on Google Cloud Earned Jan 13, 2023 EST
Google Cloud Big Data and Machine Learning Fundamentals Earned Jul 20, 2022 EDT
Table Calculations, Pivots, and Visualizations Earned Jul 5, 2022 EDT
Building Reports in Looker Earned Jul 5, 2022 EDT
Liquid Templates and Parameters Earned Jul 4, 2022 EDT
Extends to Keep LookML DRY Earned Jun 30, 2022 EDT
Admin Roles and Folder Access Earned Mei 31, 2022 EDT
Version Control and Caching Earned Mei 31, 2022 EDT
The Modern Data Platform and LookML Earned Mei 17, 2022 EDT
Driving Data Culture and Designing Dashboards Earned Apr 30, 2022 EDT
Achieving Business Outcomes with Looker Earned Apr 22, 2022 EDT
Looker Explained Earned Apr 19, 2022 EDT

Selesaikan badge keahlian pengantar Panduan Awal Menggunakan Dataplex untuk menunjukkan keterampilan dalam hal berikut: membuat aset Dataplex, membuat jenis aspek, dan menerapkan aspek ke entri di Dataplex.

Pelajari lebih lanjut

This course is part 1 of a 3-course series on Serverless Data Processing with Dataflow. In this first course, we start with a refresher of what Apache Beam is and its relationship with Dataflow. Next, we talk about the Apache Beam vision and the benefits of the Beam Portability framework. The Beam Portability framework achieves the vision that a developer can use their favorite programming language with their preferred execution backend. We then show you how Dataflow allows you to separate compute and storage while saving money, and how identity, access, and management tools interact with your Dataflow pipelines. Lastly, we look at how to implement the right security model for your use case on Dataflow.

Pelajari lebih lanjut

Incorporating machine learning into data pipelines increases the ability to extract insights from data. This course covers ways machine learning can be included in data pipelines on Google Cloud. For little to no customization, this course covers AutoML. For more tailored machine learning capabilities, this course introduces Notebooks and BigQuery machine learning (BigQuery ML). Also, this course covers how to productionalize machine learning solutions by using Vertex AI.

Pelajari lebih lanjut

In this course you will get hands-on in order to work through real-world challenges faced when building streaming data pipelines. The primary focus is on managing continuous, unbounded data with Google Cloud products.

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While the traditional approaches of using data lakes and data warehouses can be effective, they have shortcomings, particularly in large enterprise environments. This course introduces the concept of a data lakehouse and the Google Cloud products used to create one. A lakehouse architecture uses open-standard data sources and combines the best features of data lakes and data warehouses, which addresses many of their shortcomings.

Pelajari lebih lanjut

This course introduces the Google Cloud big data and machine learning products and services that support the data-to-AI lifecycle. It explores the processes, challenges, and benefits of building a big data pipeline and machine learning models with Vertex AI on Google Cloud.

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This course reviews the processes for creating table calculations, pivots and visualizations

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This course is designed for Looker users who want to create their own ad-hoc reports. It assumes experience of everything covered in our Get Started with Looker course (logging in, finding Looks & dashboards, adjusting filters, and sending data)

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In this course you will discover Liquid, the templating language invented by Shopify and explore how it can be used in Looker to create dynamic links, content, formatting, and more.

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Hands on course covering the main uses of extends and the three primary LookML objects extends are used on as well as some advanced usage of extends.

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This course is designed to teach you about roles, permission sets and model sets. These are areas that are used together to manage what users can do and what they can see in Looker.

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This course aims to introduce you to the basic concepts of Git: what it is and how it's used in Looker. You will also develop an in-depth knowledge of the caching process on the Looker platform, such as why they are used and why they work

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This course provides an introduction to databases and summarized the differences in the main database technologies. This course will also introduce you to Looker and how Looker scales as a modern data platform. In the lessons, you will build and maintain standard Looker data models and establish the foundation necessary to learn Looker's more advanced features.

Pelajari lebih lanjut

This course provides an iterative approach to plan, build, launch, and grow a modern, scalable, mature analytics ecosystem and data culture in an organization that consistently achieves established business outcomes. Users will also learn how to design and build a useful, easy-to-use dashboard in Looker. It assumes experience with everything covered in our Getting Started with Looker and Building Reports in Looker courses.

Pelajari lebih lanjut

In this course, we’ll show you how organizations are aligning their BI strategy to most effectively achieve business outcomes with Looker. We'll follow four iterative steps: Plan, Build, Launch, Grow, and provide resources to take into your own services delivery to build Looker with the goal of achieving business outcomes.

Pelajari lebih lanjut

By the end of this course, you should be able to articulate Looker's value propositions and what makes it different from other analytics tools in the market. You should also be able to explain how Looker works, and explain the standard components of successful service delivery.

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