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Data Analysis courses

Data analysis courses teach techniques for inspecting, cleaning, transforming, and modeling data to discover useful information, inform conclusions, and support decision-making. Build your analysis skills using technologies such as Python, R and SQL.

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Recommended for Data Analysis beginners

Build your Data Analysis skills with interactive courses, curated by real-world experts

Course

Analyzing Data in Tableau

BasicSkill Level
4.8+
1,828 reviews
8 hr
Take your Tableau skills up a notch with advanced analytics and visualizations.

Track

Associate Data Analyst in SQL

4.7+
193 reviews
39 hr
Gain the SQL skills you need to query a database, analyze the results, and become a SQL proficient Data Analyst. No prior coding experience required!

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Browse Data Analysis courses and tracks

Course

Calculations in Sigma

BasicSkill Level
4.8+
209 reviews
2 hr
Build dynamic Sigma calculations to explore data, automate logic, and uncover trends with practical business examples.

Course

Foundations of Inference in R

IntermediateSkill Level
4.7+
58 reviews
4 hr
Learn how to draw conclusions about a population from a sample of data via a process known as statistical inference.

Course

Introduction to Network Analysis in Python

IntermediateSkill Level
4.7+
228 reviews
4 hr
This course will equip you with the skills to analyze, visualize, and make sense of networks using the NetworkX library.

Course

Statistical Techniques in Tableau

IntermediateSkill Level
4.8+
694 reviews
4 hr
Take your reporting skills to the next level with Tableau’s built-in statistical functions.

Course

Bayesian Data Analysis in Python

IntermediateSkill Level
4.7+
268 reviews
4 hr
Learn all about the advantages of Bayesian data analysis, and apply it to a variety of real-world use cases!

Course

Introduction to Python in Power BI

IntermediateSkill Level
4.8+
157 reviews
3 hr
Learn how to use Python scripts in Power BI for data prep, visualizations, and calculating correlation coefficients.

Course

Case Study: Analyzing Job Market Data in Tableau

BasicSkill Level
4.7+
590 reviews
3 hr
In this case study, you’ll use visualization techniques to find out what skills are most in-demand for data scientists, data analysts, and data engineers.

Course

Dealing With Missing Data in R

BasicSkill Level
4.7+
149 reviews
4 hr
Make it easy to visualize, explore, and impute missing data with naniar, a tidyverse friendly approach to missing data.

Course

Time Series Analysis in Power BI

IntermediateSkill Level
4.7+
285 reviews
5 hr
Learn to analyze data over time with this practical course on Time Series Analysis in Power BI. Work with real datasets & practice common techniques.

Course

Experimental Design in R

IntermediateSkill Level
4.7+
364 reviews
4 hr
In this course youll learn about basic experimental design, a crucial part of any data analysis.

Course

Case Study: Supply Chain Analytics in Power BI

BasicSkill Level
4.8+
196 reviews
4 hr
Learn how to use Power BI for supply chain analytics in this case study. Create a make vs. buy analysis tool, calculate costs, and analyze production volumes.

Course

Visualizing Geospatial Data in Python

IntermediateSkill Level
4.7+
364 reviews
4 hr
Learn how to make attractive visualizations of geospatial data in Python using the geopandas package and folium maps.

Course

Baseball Data Visualization in Power BI

BasicSkill Level
4.8+
211 reviews
1 hr
Discover how to analyze and visualize baseball data using Power BI. Create scatter plots, tornado charts, and gauges to bring baseball insights alive.

Course

Analyzing Social Media Data in Python

IntermediateSkill Level
4.8+
34 reviews
4 hr
In this course, youll learn how to collect Twitter data and analyze Twitter text, networks, and geographical origin.

Course

RNA-Seq with Bioconductor in R

IntermediateSkill Level
4.7+
149 reviews
4 hr
Use RNA-Seq differential expression analysis to identify genes likely to be important for different diseases or conditions.

Course

Anomaly Detection in Python

IntermediateSkill Level
4.8+
183 reviews
4 hr
Detect anomalies in your data analysis and expand your Python statistical toolkit in this four-hour course.

Course

Time Series Analysis in R

IntermediateSkill Level
4.8+
91 reviews
4 hr
Learn the core techniques necessary to extract meaningful insights from time series data.

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Frequently asked questions

Is data analysis easy to learn?

It’s different for everyone. Some people pick up data analysis very quickly, while others need a bit more time. The underlying theory and concepts are not hard to understand (or highly technical), but you’ll need to learn a few popular data analysis tools. 

This includes SQL and databases, a programming language such as Python or R, spreadsheets and Excel, and software such as Power BI or Tableau. 

It might sound like a lot, but each technology is easy to learn individually, especially when you choose data analysis courses from a dedicated online training provider like DataCamp.

Has AI changed the role or need for data analysts?

AI is indeed transforming the data analyst's role. Rather than replacing them, it has automated repetitive tasks, freeing analysts to focus on complex issues, interpret AI results, and strategize. Although AI aids in data analysis, human supervision for training and adjusting AI models remains crucial. Thus, AI is changing the analyst role but increased its importance.

Which data analysis course is the best?

We only release courses that meet our high quality standards, which is why DataCamp is known as a leading platform for learning data analysis! That being said, our Data Analyst with Python Career Track is one of our most popular, comprehensive course programs for acquiring the skills to become a data analyst from scratch.

How can I become a data analyst quickly?

To become a data analyst quickly, a structured learning path like DataCamp's Career Tracks is beneficial. For example, programs such as our Data Analyst with Python and Data Analyst with Power BI Tracks are designed to gradually upskill you in the various concepts, technologies and processes required to be a data analyst.

And importantly, becoming a data analyst requires dedication and consistency in learning, while embracing a positive attitude towards problem-solving. Applying your knowledge to real-world projects helps solidify concepts, and creating a data portfolio to showcase these projects can demonstrate your proficiency to potential employers.

See our 'How to become a data analyst' article for further guidance.

How can online courses help you learn data analytics?

DataCamp's courses provide a flexible and convenient way to learn data analytics at your own pace. Our data analytics courses, taught by industry experts, offer interactive exercises and practical projects that help you apply theoretical concepts to real-world scenarios.

Do I need a background in programming to start learning data analytics?

No, you don't need a programming background to start learning data analytics. Our beginner courses, such as Introduction to SQL and Analyzing Data in Tableau, are designed to accommodate beginners and gradually introduce programming concepts, if needed.

What jobs can you get with data analysis skills?

With data analysis skills in your technical tool kit, you have plenty of job options:

  • Data analyst
  • Database administrator
  • Systems analyst
  • Business intelligence
  • Digital marketer
  • Data scientist
  • Financial analyst
  • And many more!

Because the modern business world is data-driven, people with data analysis skills find it easy to get work in an eclectic mix of industries and sectors.

Are data analysis skills in demand?

Yes, data analysts are some of the most in-demand professionals worldwide. Data from the US Bureau of Labor Statistics suggest the number of jobs for analysts is expected to grow by 23% between 2021 and 2031.

How can I prove my data analysis skills to employers?

To prove your data analysis skills to employers, you can complete our industry recognized Data Analyst Certification. This certification showcases your data analysis knowledge using SQL and either Python or R.

What tools and software are commonly used in data analytics?

Common tools in data analytics include Excel, SQL, Python, R, Tableau, and Power BI. These tools help in data manipulation, analysis, and visualization.

Other technologies and topics

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