Packt
Design for Impact: A Guide to Product Experimentation

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Design for Impact: A Guide to Product Experimentation

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您将学到什么

  • Apply research to generate testable, insight-driven hypotheses

  • Prioritize ideas and workflows based on value and feasibility

  • Test solutions using data-centered validation techniques

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November 2025

作业

9 项作业

授课语言:英语(English)

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

该课程共有9个模块

In this section, we replace opinion-driven decisions with a seven-step Conversion Design workflow, using A/B tests and isolated metrics to compound user value and business impact.

涵盖的内容

2个视频4篇阅读材料1个作业

In this section, we blend qualitative observation with quantitative analytics to craft mixed-method UX research, prioritize high-value customer problems, and translate evidence-based insights into measurable product and business gains.

涵盖的内容

1个视频2篇阅读材料1个作业

In this section, we apply the scientific method to business experimentation, formulating null and alternate hypotheses, implementing randomized sampling, detecting sample ratio mismatches, and interpreting results for data-driven decisions.

涵盖的内容

1个视频5篇阅读材料1个作业

In this section, we learn to prioritize high-impact experiments, allocate effort with a 60/40 foundational-innovation split, and deploy Kanban to surface bottlenecks, blockers, and bloat, accelerating validated learning.

涵盖的内容

1个视频6篇阅读材料1个作业

In this section, we design conversion experiments by prioritizing accessibility, usability, and culturally aware localization, then leverage aesthetic cues and feedback loops to motivate engagement and collect reliable test insights.

涵盖的内容

1个视频7篇阅读材料1个作业

In this section, you will learn to craft hypothesis-driven variant-A-versus-B tests, compute minimum detectable effect and sample size, and interpret confusion matrices to support confident, evidence-based product choices.

涵盖的内容

1个视频7篇阅读材料1个作业

In this section, you will interpret experiment data with p-values, confidence intervals and conversion math while avoiding peeking bias and volatility, enabling sound, evidence-based design decisions.

涵盖的内容

1个视频7篇阅读材料1个作业

In this section, we expose cognitive biases that distort experiment analysis and apply guardrail metrics and peer review boards to drive balanced, evidence-based product decisions.

涵盖的内容

1个视频8篇阅读材料1个作业

In this section, we analyze cultural levers, build reinforcement systems, and embed norms, traditions, and artifacts that reward rigorous A/B experimentation, scaling Conversion Design's data-driven impact across the organization.

涵盖的内容

1个视频7篇阅读材料1个作业

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