IBM

IBM Data Analyst Capstone Project

Rav Ahuja
Ramesh Sannareddy

Instructors: Rav Ahuja

Sponsored by IEM UEM Group

64,396 already enrolled

Gain insight into a topic and learn the fundamentals.
4.6

(1,182 reviews)

Advanced level

Recommended experience

Flexible schedule
Approx. 27 hours
Learn at your own pace
91%
Most learners liked this course
Gain insight into a topic and learn the fundamentals.
4.6

(1,182 reviews)

Advanced level

Recommended experience

Flexible schedule
Approx. 27 hours
Learn at your own pace
91%
Most learners liked this course

What you'll learn

  • Apply techniques to gather and wrangle data from multiple sources.

  • Analyze data to identify patterns, trends, and insights through exploratory techniques.

  • Create visual representations of data using Python libraries to communicate findings effectively.

  • Construct interactive dashboards with BI tools to present and explore data dynamically.

Skills you'll gain

Details to know

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Assessments

24 assignments

Taught in English

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Build your Data Analysis expertise

This course is part of the IBM Data Analyst Professional Certificate
When you enroll in this course, you'll also be enrolled in this Professional Certificate.
  • Learn new concepts from industry experts
  • Gain a foundational understanding of a subject or tool
  • Develop job-relevant skills with hands-on projects
  • Earn a shareable career certificate from IBM
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There are 6 modules in this course

In this module, you will apply key concepts in data collection and analysis through APIs and web scraping. You will begin by analyzing HTTP requests and utilizing the GitHub REST API to retrieve and paginate job postings for various technologies. Next, you will collect job data from the GitHub Jobs API. Additionally, you will perform data collection using web scraping techniques, including downloading webpages, scraping links and images, and extracting data from HTML tables to write into a CSV file. The module also includes a graded quiz to test your knowledge.

What's included

2 videos1 reading4 assignments5 app items3 plugins

In this module, you will perform essential data-wrangling techniques necessary for cleaning and preparing datasets for analysis. Throughout the module, you will engage in hands-on activities to identify and handle common data issues, including duplicate entries and missing values. You will strategically remove duplicate records, apply suitable imputation strategies for missing data, and normalize datasets to ensure consistency and accuracy. Additionally, you will have a graded quizz to assess your understanding and reinforce the concepts covered.

What's included

7 assignments6 app items1 plugin

In this module, you will engage in essential exploratory data analysis (EDA) techniques to uncover meaningful insights from your data set. You will start by identifying the distribution of the data through plotting distribution curves and histograms, which are crucial for understanding how values are spread across different features. Next, you will detect outliers that may skew your analysis and learn how to effectively remove them to ensure data integrity. Additionally, you will explore correlations between various features in the data set, revealing relationships that can inform your overall analysis. Finally, you will create a new DataFrame to organize and present your findings. The module includes a graded quiz to test your knowledge.

What's included

1 reading5 assignments4 app items

In this lab, you will perform essential data visualization techniques to extract meaningful insights from the Stack Overflow survey data set. You will start by visualizing the distribution of data using histograms and box plots to understand the spread of compensation and age. Next, you will explore relationships between features through scatterplots and bubble plots, followed by examining the composition of data with pie charts and stacked charts. Additionally, you will compare data across categories using line and bar charts. The module includes a graded quizz that will assess your knowledge of these concepts, ensuring you are well prepared for further analysis in your final project.

What's included

6 assignments9 app items1 plugin

In this module, you will create dashboards using Stack Overflow survey data using either IBM Cognos Analytics or Google Looker Studio. The assignment is divided into Part A: Building a Dashboard with IBM Cognos Analytics and Part B: Building a Dashboard with Google Looker Studio. You will design a dashboard with sections on Current Technology Usage, Future Technology Trends, and Demographics. After completing the assignment, you will be required to submit the link of the Cognos or Looker Studio dashboard you complete. The module also includes a checklist that helps you ensure you have completed all necessary tasks before moving on.

What's included

2 assignments3 plugins

In the final module, you will focus on presenting your data findings effectively. You will begin by exploring key elements contributing to a successful data findings report, including structuring your report, using best practices for data visualization, and presenting complex information in an engaging, accessible format. The module also includes labs covering basics in PowerPoint, foundational presentation techniques, and saving your presentation as a PDF to ensure a polished, professional final product. Finally, you will complete and submit a final presentation that highlights insights derived from the Stack Overflow Developer Survey data. Your final assignment will be graded by one or more of your peers, and you will also evaluate the work of a peer who has completed this capstone project.

What's included

2 videos3 readings1 peer review5 plugins

Instructors

Instructor ratings
4.6 (366 ratings)
Rav Ahuja
IBM
53 Courses3,139,582 learners
Ramesh Sannareddy
IBM
12 Courses339,069 learners

Offered by

IBM

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