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    Statistics for Data Science & Business Analysis with Python

    Posted By: lucky_aut
    Statistics for Data Science & Business Analysis with Python

    Statistics for Data Science & Business Analysis with Python
    Published 11/2025
    Duration: 4h 58m | .MP4 1280x720 30 fps(r) | AAC, 44100 Hz, 2ch | 2.35 GB
    Genre: eLearning | Language: English

    Master Descriptive Statistics, Data Visualization, Probability, and Hypothesis Testing from Scratch using Python

    What you'll learn
    - Calculate and interpret key descriptive statistics (mean, median, standard deviation) for data summaries
    - Apply probability rules and Bayes’ Theorem to solve conditional probability problems
    - Analyse and summarise datasets using Python to compute statistics and create data visualisations
    - Formulate null/alternative hypotheses and conduct one-sample Z and T-tests for population means

    Requirements
    - No prior statistics or advanced programming experience is required; we start from the basics!

    Description
    Are you ready to move beyond just spreadsheets and start making data-driven decisions based on solid statistical evidence? If you know that a career inData Science, Business Intelligence, or Analyticsdemands more than simple averages, this course is your complete guide to building that essential quantitative foundation.

    Master the Statistical Foundations of Data Science and Business Analysis in Python

    This is the practical, hands-on course you’ve been looking for. We designed it for one purpose: to give you the practical skills to confidently handle data and make reliable statistical inferences.

    By the end of this course, you will be able to:

    Builda solid foundation in descriptive statistics (mean, median, dispersion) using Python.

    Createpowerful data visualizations in Python (using libraries like Matplotlib/Seaborn) to tell compelling stories.

    Mastercore probability concepts like conditional probability and Bayes' Theorem.

    Understand and applykey probability distributions (Binomial, Poisson, Normal).

    Performreal-world hypothesis testing (like T-tests) to validate business decisions with data.

    Why is Statistical Fluency Your Career Superpower?

    In the modern world, data is the new oil. But raw data is useless. The real value is in theinsightsextracted from it. Companies like Google, Netflix, and Amazon use statistical models as the backbone of their decision-making. If you want a career in data, youmustspeak the language of statistics.

    This course is your translator. It bridges the gap between being a "Data User" (who just looks at dashboards) and a "Data Analyst" (who can build and question them). We ensure you have the conceptual clarity and the Python coding skills to work with data confidently and responsibly.

    How This Course is Taught (Your Practical Toolkit)

    We believe the only way to learn statistics is bydoing. We'll start from Lesson 1, "Introduction to Data and Variables," and build your knowledge logically, module by module.

    Clear & Simple:We have broken down complex topics like Bayes' Theorem, the Central Limit Theorem, and p-values into easy-to-follow steps.

    Real-World Focus:We emphasize practical application over abstract theory. We use real-world examples to discuss common pitfalls like sampling bias, effect sizes, and the limitations of statistical tests, ensuring you become an effective and ethical data analyst.

    You will gain the skills to handle data quality issues, outliers, and missing values. You'll learn to construct and interpret confidence intervals and execute one-sample and two-sample T-tests to test real hypotheses.

    Ready to start your data science journey with a rock-solid statistical foundation?

    Enroll now, watch the free preview lectures, and begin building the quantitative skills that employers demand!

    Who this course is for:
    - Beginners in Data Science or Machine Learning who need to build a strong, foundational understanding of Probability and Statistics
    - Analysts or researchers who want to start using Python for reliable data exploration and hypothesis testing
    - Students looking for a comprehensive and foundational course in statistical methods and inference
    More Info