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Master the complete end-to-end data science workflow with this comprehensive course from Ucanly. This intermediate program is designed for learners who want to combine statistics, programming, and machine learning to solve complex problems. You will learn how to ask the right questions, wrangle messy data, and build predictive models to uncover hidden insights and drive impactful, data-driven decisions using Python.
With the expert guidance of Ucanly, you will go beyond individual tools to master the full data science pipeline. You’ll learn to perform rigorous Exploratory Data Analysis (EDA), apply robust statistical methods, and train a variety of machine learning models. This Ucanly course also introduces you to the challenges of working with Big Data and emphasizes the crucial skill of communicating your findings effectively to stakeholders.
By the end of this project-driven course, you will have completed a full-scale data science project—from formulating a hypothesis to deploying a model and presenting your results—equipping you with a portfolio-ready case study that demonstrates your analytical prowess.
Course Content
Module 1: The Data Scientist’s Mindset (The Ucanly Framework)
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Lesson 1.1: Course Introduction: What Does a Data Scientist Actually Do?
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Lesson 1.2: The Data Science Lifecycle: From Business Problem to Deployed Solution
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Lesson 1.3: Asking the Right Questions: Formulating a Hypothesis
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Lesson 1.4: The Python Data Science Ecosystem (Pandas, NumPy, Scikit-learn, Matplotlib)
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Lesson 1.5: Review of Your Data Science Environment Setup
Module 2: Applied Statistics for Data Science
Module 3: Data Wrangling and Exploratory Data Analysis (EDA)
Module 4: Machine Learning in Practice (A Ucanly Deep Dive)
Module 5: Introduction to Big Data Technologies
Module 6: Communicating Data Insights
Module 7: Advanced Topics and Specializations
Module 8: Capstone: End-to-End Data Science Project (The Ucanly Challenge)
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