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Get Started with Databricks for Machine Learning - Mandarin Chinese

在本课程中,您将培养使用 Databricks Data Intelligence Platform 执行机器学习工作流并支持数据科学工作负载所需的基础技能。您将从机器学习从业者的视角探索该平台,内容涵盖使用 Mosaic AI Feature Engineering 构建和管理特征、使用 MLflow 进行端到端模型生命周期管理,以及使用 Lakeflow Jobs 进行管道编排等主题。此外,您还将学习如何使用 Databricks AI Model Serving 进行实时模型推理,并通过 Genie Code - Data Science Agent Mode 体验 Databricks 透明、对话式的模型开发方式——在其中,您可以使用自然语言提示,直接在笔记本中生成、运行并迭代优化可执行的 ML 工作流。本课程包含由讲师主导的演示,并以一个全面的实验作为收尾,巩固贯穿全程所讲解的概念。


Languages Available: English | 日本語 | Português BR | 한국어

Skill Level
Onboarding
Duration
3h
Prerequisites

本内容面向具备以下技能/知识/能力的学员而开发:
• 对 Python 有初级水平的了解。

• 对 DS/ML 概念(例如分类模型和回归模型)、常见的模型指标(例如 F1-score)以及 Python 库(例如 scikit-learn 和 XGBoost)有基本的了解。

Self-Paced

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Runtime

Self-Paced

Custom-fit learning paths for data, analytics, and AI roles and career paths through on-demand videos

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Instructors

Instructor-Led

Public and private courses taught by expert instructors across half-day to two-day courses

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Learning

Blended Learning

Self-paced and weekly instructor-led sessions for every style of learner to optimize course completion and knowledge retention. Go to Subscriptions Catalog tab to purchase

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Scale

Skills@Scale

Comprehensive training offering for large scale customers that includes learning elements for every style of learning. Inquire with your account executive for details

Upcoming Public Classes

Data Engineer

Automated Deployment with Declarative Automation Bundles

This course provides a comprehensive review of DevOps principles and their application to Databricks projects. It begins with an overview of core DevOps, DataOps, continuous integration (CI), continuous deployment (CD), and testing, and explores how these principles can be applied to data engineering pipelines.

The course then focuses on continuous deployment within the CI/CD process, examining tools like the Databricks REST API, SDK, and CLI for project deployment. You will learn about Declarative Automation Bundles (DABs) and how they fit into the CI/CD process. You’ll dive into their key components, folder structure, and how they streamline deployment across various target environments in Databricks. You will also learn how to add variables, modify, validate, deploy, and execute Declarative Automation Bundles for multiple environments with different configurations using the Databricks CLI.

Finally, the course introduces Visual Studio Code as an Interactive Development Environment (IDE) for building, testing, and deploying Declarative Automation Bundles locally, optimizing your development process. The course concludes with an introduction to automating deployment pipelines using GitHub Actions to enhance the CI/CD workflow with Declarative Automation Bundles.

By the end of this course, you will be equipped to automate Databricks project deployments with Declarative Automation Bundles, improving efficiency through DevOps practices.

Note: 

1. Databricks Academy is transitioning from video lectures to a more streamlined PDF format with slides and notes for all self-paced courses. Please note that demo videos will still be available in their original format. We would love to hear your thoughts on this change, so please share your feedback through the course survey at the end. Thank you for being a part of our learning community!

2. This course is the fourth in the 'Advanced Data Engineering with Databricks' series.

Paid & Subscription
3h
Lab
Professional

Questions?

If you have any questions, please refer to our Frequently Asked Questions page.