Build the ability to design, measure, and optimize brand strategy using AI and data-driven insights. In this capstone course, you’ll learn how to combine creative brand thinking with analytics, predictive models, and real-time measurement. Using practical tools like ChatGPT, Jasper, Power BI, and Google Data Studio, you’ll work on real-world use cases to create an AI-powered brand performance dashboard and a strategic data story. This course focuses on applied learning and is ideal for learners ready to move from intuition-led branding to evidence-based decision-making.
通过 Coursera Plus 提高技能,仅需 239 美元/年(原价 399 美元)。立即节省

推荐体验
推荐体验
高级
Basic understanding of branding or design concepts is helpful. No advanced tools or coding required.
推荐体验
推荐体验
高级
Basic understanding of branding or design concepts is helpful. No advanced tools or coding required.
您将学到什么
Apply AI tools to analyse brand performance and customer insights
Build dashboards using data visualization and storytelling techniques
Use predictive analytics and marketing automation for optimization
Create AI-driven brand strategy and measurement frameworks
要了解的详细信息

添加到您的领英档案
April 2026
13 项作业
了解顶级公司的员工如何掌握热门技能

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- 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
- 获得可共享的职业证书

该课程共有4个模块
This Module introduces learners to the core technologies, tools, and ethical considerations shaping AI-driven brand strategy. It explains how machine learning, NLP, and predictive modeling help brands understand audiences, automate tasks, and generate creative ideas with greater precision. Learners explore practical applications of tools like ChatGPT, Jasper, and visual generation platforms, gaining clarity on how AI supports ideation, content creation, and workflow efficiency. The module also highlights the evolving role of the brand strategist, emphasizing the shift from manual execution to data-informed decision-making. A strong focus is placed on ethics, including bias, transparency, authenticity, and responsible AI governance—critical factors for maintaining trust in AI-enabled branding. Through hands-on exercises, tool-matching activities, and campaign ethics evaluations, learners build foundational literacy in applying AI thoughtfully and strategically. By the end of the module, learners can identify key AI technologies, understand their strategic functions, evaluate ethical risks, and apply practical tools to support modern brand-building.
涵盖的内容
9个视频5篇阅读材料4个作业1个讨论话题
9个视频•总计84分钟
- AI in Marketing: Beyond the Buzz•11分钟
- How AI Understands Consumers•9分钟
- From Automation to Intelligence•10分钟
- Creative AI in Action•10分钟
- Visual Generation Tools•9分钟
- Workflow Integration•8分钟
- AI Bias and Transparency•10分钟
- Brand Authenticity in the Age of AI•9分钟
- Responsible AI Frameworks•9分钟
5篇阅读材料•总计60分钟
- Syllabus•5分钟
- Glossary•10分钟
- AI Basics for Brand Professionals•15分钟
- Practical AI Tools for Creative Branding•15分钟
- Ethical AI Checklist for Marketers•15分钟
4个作业•总计105分钟
- Introduction to AI in Branding•60分钟
- AI Fundamentals for Brand Strategy•15分钟
- AI Tools and Applications for Branding•15分钟
- Ethics and Trust in AI-Driven Branding•15分钟
1个讨论话题•总计5分钟
- Which AI tool actually helps your brand work?•5分钟
This Module equips learners with the skills to gather, clean, and interpret brand data using AI-driven analytics. The module begins by mapping where brand data originates—social platforms, search behavior, CRM systems, and customer feedback—and teaches how to assess data quality to ensure reliable insights. Learners then explore AI-powered sentiment analysis and audience clustering, understanding how NLP models interpret tone, intent, and emotion to reveal deeper patterns in consumer perception. Case examples, such as Spotify Wrapped, show how brands transform raw data into personalized stories and strategic insights. The module also covers key brand health metrics, including Share of Voice, NPS, and Brand Lift, along with predictive indicators that reveal trends over time. Through interactive labs, learners practice structuring data, analyzing comments, and building a measurement framework. By the end of Module, learners can collect multi-source brand data, apply AI tools for sentiment and audience analysis, evaluate brand health, and translate findings into actionable strategic insights.
涵盖的内容
9个视频3篇阅读材料4个作业
9个视频•总计78分钟
- Where Brand Data Lives•9分钟
- Data Quality and Relevance•9分钟
- From Raw to Ready•9分钟
- AI in Emotion Detection•9分钟
- Case Study: Spotify Wrapped Insights•8分钟
- Interpreting Sentiment Scores•8分钟
- Key Metrics Explained•9分钟
- Equity Over Time•9分钟
- AI in Predictive Metrics•8分钟
3篇阅读材料•总计45分钟
- Brand Data Pipeline Guide•15分钟
- Sentiment Analysis Toolkit•15分钟
- Brand Health Index Template•15分钟
4个作业•总计105分钟
- Data-Driven Brand Insights and Analytics•60分钟
- Collecting Brand Data•15分钟
- AI-Powered Sentiment and Audience Analysis•15分钟
- Measuring Brand Health and Equity•15分钟
This Module focuses on using predictive analytics, automation, and real-time data to refine and optimize brand strategy. Learners begin by exploring forecasting models that predict engagement, reach, and retention, along with the importance of evaluating accuracy, bias, and reliability in AI-driven predictions. The module then moves into personalization and automation, showing how leading brands like Amazon and Netflix use tailored experiences, AI-powered CRM systems, and automated journeys to increase relevance and efficiency. Learners gain hands-on experience with tools that map customer interactions and identify opportunities for smarter, more personalized brand touchpoints. The module also covers AI-enhanced A/B testing and real-time optimization, where campaigns adjust dynamically based on live performance data. Through interactive labs, students experiment with adaptive experimentation, identify failures, and iterate for improved outcomes. By the end of Module, learners will be able to use predictive insights to guide decisions, design automated and personalized brand experiences, and apply continuous optimization models to strengthen overall brand strategy.
涵盖的内容
9个视频3篇阅读材料4个作业1个讨论话题
9个视频•总计80分钟
- Forecasting Brand Engagement•9分钟
- Model Accuracy and Bias•9分钟
- From Prediction to Action•8分钟
- The Power of Personalization•8分钟
- Automation Tools for Marketers•9分钟
- ROI of Automation•10分钟
- A/B Testing with AI•9分钟
- Live Campaign Optimization•9分钟
- Learning from Failures•9分钟
3篇阅读材料•总计35分钟
- Predictive Analytics in Branding•15分钟
- Automation Impact Matrix•15分钟
- Case Study•5分钟
4个作业•总计105分钟
- AI in Brand Strategy Optimization•60分钟
- Predictive Modelling and Forecasting•15分钟
- Personalization and Automation•15分钟
- Real-Time Optimization and A/B Testing•15分钟
1个讨论话题•总计5分钟
- What would you optimize first—and why?•5分钟
This Module brings together all previous learning through a hands-on capstone project where learners design and present an AI-powered brand dashboard. The module begins with building a strong foundation in dashboard structure, data integration, and transforming raw metrics into meaningful insights. Learners explore how to combine multi-source data in Power BI and apply best practices to make dashboards both functional and actionable. The second lesson deepens visual storytelling skills, teaching how to choose impactful visualizations, craft a cohesive narrative from analytics, and communicate insights effectively to leadership. The final lesson prepares learners to deliver a polished, professional presentation of their AI-supported brand strategy. Through guided videos, readings, interactive tools, and structured feedback, participants refine their dashboards, practice executive-level communication, and prepare their projects for portfolio or career use. By the end of Module 4, learners produce a cohesive, insight-driven dashboard that demonstrates applied analytics, strategic thinking, and industry-ready presentation skills.
涵盖的内容
9个视频3篇阅读材料1个作业
9个视频•总计82分钟
- Dashboard Fundamentals•10分钟
- Data Integration in Power BI•9分钟
- From Metrics to Meaning•8分钟
- Visualizing Data for Impact•10分钟
- Crafting the Data Story•9分钟
- Executive Presentation Skills•9分钟
- Presenting the Strategy•9分钟
- Feedback and Iteration•10分钟
- Career Showcase Prep•10分钟
3篇阅读材料•总计45分钟
- Dashboard Design Guide•15分钟
- Data Storytelling Handbook•15分钟
- Portfolio Guide for Brand Strategists•15分钟
1个作业•总计60分钟
- Capstone Project: AI-Driven Brand Dashboard•60分钟
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Board Infinity is a full-stack career platform, founded in 2017 that bridges the gap between career aspirants and industry experts. Our platform fosters professional growth, delivering personalized learning experiences, expert career coaching, and diverse opportunities to help individuals fulfill their career dreams. Board Infinity has successfully facilitated over 20,000 career transitions, marking a significant impact in the career development landscape.
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人们为什么选择 Coursera 来帮助自己实现职业发展

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常见问题
An AI branding course teaches how to use artificial intelligence to improve brand strategy, personalization, and performance measurement. It is ideal for marketers, analysts, and brand managers who want to integrate data-driven decision-making into branding.
Yes. You will use tools like ChatGPT, Jasper, Power BI, and Google Data Studio to analyze data, build dashboards, and present insights effectively.
Yes. The course covers marketing automation platforms and automated email marketing workflows, helping you optimize campaigns and improve engagement.
You will learn how to collect, clean, and analyse customer data using data analysis tools, apply sentiment analysis, and extract actionable insights for brand decisions.
Yes. You will build predictive models, interpret outputs, and apply them to real marketing scenarios like forecasting engagement and optimizing campaigns.
Yes. You will create dashboards and learn storytelling with data techniques to present insights clearly to stakeholders and decision-makers.
Yes. This course is designed at an advanced level and is suitable for learners who want to deepen their expertise in AI-driven marketing analytics and strategy.
You will create a complete AI-driven brand performance dashboard and present a strategic report combining analytics, visualization, and business insights.
This course uniquely combines AI, branding, analytics, and automation into one integrated learning experience rather than focusing only on data analysis.
Yes. It builds practical skills in AI tools, data visualization, predictive analytics, and automation—key competencies required for modern marketing and analytics roles.
You will work with tools like Power BI and Google Data Studio along with AI tools to process, analyze, and visualize marketing data effectively.
Automated email marketing improves targeting, personalization, and timing, helping increase engagement and conversions while reducing manual effort.
Yes. The course introduces key marketing automation platforms and explains how to integrate them into campaign workflows and analytics systems.
While the course is advanced, it provides structured guidance on using data visualisation tools, making it accessible for learners with basic analytics knowledge.
Storytelling with data helps you present complex analytics in a simple, compelling way, enabling better communication of brand insights and strategic decisions.
To access the course materials, assignments and to earn a Certificate, you will need to purchase the Certificate experience when you enroll in a course. You can try a Free Trial instead, or apply for Financial Aid. The course may offer 'Full Course, No Certificate' instead. This option lets you see all course materials, submit required assessments, and get a final grade. This also means that you will not be able to purchase a Certificate experience.
When you enroll in the course, you get access to all of the courses in the Specialization, and you earn a certificate when you complete the work. Your electronic Certificate will be added to your Accomplishments page - from there, you can print your Certificate or add it to your LinkedIn profile.
Yes. In select learning programs, you can apply for financial aid or a scholarship if you can’t afford the enrollment fee. If fin aid or scholarship is available for your learning program selection, you’ll find a link to apply on the description page.
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