By the end of this course, learners are provided a high-level overview of data analysis and visualization tools, and are prepared to discuss best practices and develop an ensuing action plan that addresses key discoveries. It begins with common hurdles that obstruct adoption of a data-driven culture before introducing data analysis tools (R software, Minitab, MATLAB, and Python). Deeper examination is spent on statistical process control (SPC), which is a method for studying variation over time. The course also addresses do’s and don’ts of presenting data visually, visualization software (Tableau, Excel, Power BI), and creating a data story.


Data Analysis and Visualization
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Data Analysis and Visualization
This course is part of Data-Driven Decision Making (DDDM) Specialization


Instructors: Peter Baumgartner
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What you'll learn
Identify stakeholders and key components imperative to an analytics project plan
Name strengths and weaknesses of different analysis and visualization tools
Visually identify, monitor, and remove process variation
Explain how to create a compelling data story
Skills you'll gain
- Data Visualization
- Data Visualization Software
- Data Cleansing
- Data Analysis
- Process Analysis
- Statistical Process Controls
- Data Presentation
- Business Analytics
- Data Quality
- Process Capability
- Statistical Analysis
- Business Intelligence
- Data Analysis Software
- Data-Driven Decision-Making
- Tableau Software
- Data Literacy
- Data Storytelling
- Statistical Visualization
- Analysis
Tools you'll learn
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University at Buffalo

University at Buffalo
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