Microsoft

Practical AI Strategy and Azure Service Selection

Coursera PlusMonthly 3 个月 课程4 折优惠 ,让你轻松掌握闪耀技能。立即节省

Microsoft

Practical AI Strategy and Azure Service Selection

 Microsoft

位教师: Microsoft

包含在 Coursera Plus

深入了解一个主题并学习基础知识。
中级 等级

推荐体验

6 小时 完成
灵活的计划
自行安排学习进度
深入了解一个主题并学习基础知识。
中级 等级

推荐体验

6 小时 完成
灵活的计划
自行安排学习进度

您将学到什么

  • Assess when AI is appropriate for business challenges.

  • Define clear AI problem statements and use cases.

  • Evaluate Azure AI services for use-case alignment.

  • Assess feasibility and establish structured foundations for AI initiatives.

要了解的详细信息

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最近已更新!

May 2026

授课语言:英语(English)

91%

of learners achieved a positive career outcome

了解顶级公司的员工如何掌握热门技能

Petrobras, TATA, Danone, Capgemini, P&G 和 L'Oreal 的徽标

积累 Leadership and Management 领域的专业知识

本课程是 Managing AI Projects with Microsoft 专业证书 专项课程的一部分
在注册此课程时,您还会同时注册此专业证书。
  • 向行业专家学习新概念
  • 获得对主题或工具的基础理解
  • 通过实践项目培养工作相关技能
  • 通过 Microsoft 获得可共享的职业证书

该课程共有5个模块

This module builds your ability to critically evaluate whether AI is appropriate for a given business situation before any commitment is made. You'll learn to distinguish between AI approaches at a conceptual level, recognize early warning signs that suggest AI may not be the right fit, and apply structured evaluation techniques that experienced project leaders use to avoid costly missteps. By the end of this module, you'll be able to assess AI opportunities with confidence and articulate your reasoning to stakeholders.

涵盖的内容

3个视频1篇阅读材料1个作业

This module develops your ability to translate vague business goals into well-defined AI requirements that teams can act on. You'll learn to structure problem statements around outcomes rather than solutions, define measurable success criteria, and surface constraints that affect feasibility. By the end of this module, you'll be able to guide stakeholder conversations from broad intent to actionable requirements, setting AI initiatives up for clarity and accountability from the start.

涵盖的内容

3个视频1篇阅读材料3个作业

This module focuses on the critical transition from exploration to commitment in AI projects. You'll learn to recognize when a project has achieved sufficient clarity to proceed responsibly, how to facilitate go/no-go discussions that surface uncertainty rather than suppress it, and how to document decisions in ways that create accountability and enable future course correction. By the end of this module, you'll be able to assess project readiness, guide stakeholders through commitment decisions, and create defensible records of why projects were approved, paused, or stopped.

涵盖的内容

1个视频1篇阅读材料2个作业

This module focuses on how managers reason about governance decisions before and during the use of Microsoft Foundry. The emphasis is on understanding what decisions need to be made around access, oversight, risk, and cost, not on performing technical configuration. Learners develop judgment around how governance requirements vary based on project context, team structure, and risk exposure, and how those decisions are reflected in workspace design at a conceptual level.

涵盖的内容

3个视频1篇阅读材料1个作业

This module focuses on how managers reason about model deployment and early optimization decisions after an AI solution goes live. Rather than teaching how to deploy or tune models, the module emphasizes how teams evaluate what is running, interpret early performance and cost signals, and decide what actions, if any, should be taken next. You will develop judgment around post-deployment oversight, expectation management, and decision timing.

涵盖的内容

2个视频2篇阅读材料2个作业

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位教师

 Microsoft
302 门课程2,541,960 名学生

提供方

Microsoft

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常见问题

¹ 本课程的部分作业采用 AI 评分。对于这些作业,将根据 Coursera 隐私声明使用您的数据。