This course provides practical guidance on managing, cleaning, and validating research data to support high-quality, reliable research. Learners will explore key data management principles, including organizing and storing research data, sharing data responsibly, and applying FAIR data practices. The course also introduces techniques for identifying and cleaning messy datasets, using a range of approaches and tools to improve data quality. In addition, learners will develop strategies for avoiding common research mistakes during data collection, analysis, and reporting, helping to ensure findings are accurate, robust, and trustworthy. Suitable for students, researchers, and professionals, this course builds essential skills for working confidently with research data.

Data Management and Cleaning for Research

Data Management and Cleaning for Research

Instructor: Sage Instructors
Access provided by Halytskyi College
Gain insight into a topic and learn the fundamentals.
Intermediate level
Some related experience required
1 week to complete
at 10 hours a week
Flexible schedule
Learn at your own pace
What you'll learn
Apply effective data management practices to organize, store, document, and share research data responsibly
Clean and quality-check research data to improve accuracy, consistency, and reliability
Identify and prevent common research errors in data collection, analysis, and interpretation
Communicate research findings effectively through appropriate data presentation, visualization, and sharing practices
Skills you'll gain
- Data Manipulation
- Data Integrity
- Data Loss Prevention
- Data Collection
- Data Literacy
- Data Entry
- Data Maintenance
- Data Quality
- Data Governance
- Data Wrangling
- Data Cleansing
- Data Sharing
- Data Management
- Data Storage Technologies
- Metadata Management
- Document Management
- Data Validation
- Data Storage
- Data Ethics
- Data Analysis
Details to know

Shareable certificate
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Assessments
12 assignments
Taught in English
Recently updated!
September 2026
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There are 13 modules in this course
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