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    (Open) Introduction to Data Analytics
     
     
     
    A typical Data Analytics course would cover some combination of theory and practical aspects of deriving insights from data. The curriculum may differ based on the institution or platform, but here is a general overview of what is usually taught:

    1. Introduction to Data Analytics
    Overview of data analytics and its applications
    Data lifecycle and workflow
    2. Data Cleaning and Collection
    Data sources and types (structured data vs. unstructured data)
    Data collection techniques (surveys, APIs, web scraping, etc.)
    Data cleaning methods: missing values, duplicates, outliers, and inconsistencies handling
    3. Exploratory Data Analysis and Visualization
    Exploratory Data Analysis (EDA)
    Summary statistics and distribution analysis
    Data visualization methods and tools
    4. Statistical Analysis
    Probability and statistical distributions
    Hypothesis testing and confidence intervals
    Correlation and regression analysis
    Inferential statistics
    5. Tools and Technologies
    Excel for simple analysis
    SQL for querying databases
    Python or R for advanced analytics
    Introduction to Jupyter Notebooks or RStudio
    Supervised vs. unsupervised learning
    Model evaluation metrics
    7. Data Ethics and Governance
    Data privacy and security
    Ethical considerations in data usage
    Regulatory compliance (e.g., GDPR)
    8. Capstone Project or Case Studies
    https://www.sevenmentor.com/data-analytics-courses-in-pune.php
    https://www.iteducationcentre.com/data-analytics-courses-in-pune.php