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 Duration 2 days – 14 hrs

 

Overview

 

This course introduces learners to the fundamental skills of working with datasets, cleaning and transforming data, and performing exploratory data analysis (EDA). Participants will gain hands-on experience in preparing raw data for AI and machine learning models, ensuring high-quality input for better outcomes.

 

Objectives

  • Understand the structure and types of datasets.
  • Apply techniques for data cleaning and transformation.
  • Visualize data to uncover patterns and insights.
  • Perform basic exploratory data analysis (EDA) to inform decision-making.
  • Prepare datasets for machine learning model training.

Audience

  • Basic knowledge of Python programming (variables, data types, loops).
  • Completion of a basic Python course (recommended but not required).

 

Prerequisites 

  • Basic algebra (addition, multiplication, simple equations).
  • No advanced mathematics or programming knowledge required.

Course Content

 

Day 1: Understanding and Preparing Data

 

  • Introduction to datasets: structure, formats (CSV, JSON, Excel)
  • Loading and inspecting datasets using Python (Pandas)
  • Data cleaning fundamentals:
    • Handling missing values
    • Removing duplicates
    • Data type conversions
  • Data transformation basics:
    • Normalization and standardization
    • Encoding categorical variables

 

Day 2: Visualization and Exploratory Data Analysis (EDA)

 

  • Introduction to data visualization (Matplotlib, Seaborn)
  • Creating basic charts: histograms, bar plots, scatter plots
  • Identifying patterns, correlations, and outliers
  • Introduction to summary statistics (mean, median, mode, variance)
  • Basic EDA workflow:
    • Formulating questions
    • Visual storytelling with data
    • Preparing datasets for machine learning

 

Final Hands-On Activity:

 

  • Mini project: Clean, transform, and perform EDA on a sample real-world dataset.

 

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Course Customization Options To request a customized training for this course, please contact us to arrange.

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