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https://github.com/nishumehta/netflix-trends-data-analysis

Netflix Data: Cleaning, Analysis and Visualization
https://github.com/nishumehta/netflix-trends-data-analysis

excel jupyter-notebook matplotlib-pyplot python python3 tableau

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Netflix Data: Cleaning, Analysis and Visualization

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README

          

# Netflix Trends Data Analysis

This project analyzes Netflix content data to uncover trends in content type, ratings, genres, and time of release using **Python**, **Tableau**, and **Excel**.

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## Dataset Overview

- Source: Netflix Titles Dataset (Kaggle)
- Rows: 8,790+ records
- Fields: Title, Type, Genre, Date Added, Country, Rating, Duration

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## Tools & Technologies

| Tool | Usage |
|------------|-----------------------------------|
| Python | Data cleaning, EDA (`.ipynb` file)|
| Pandas, Matplotlib | EDA and visual analysis |
| Excel | Data checks and formatting |
| Tableau | Interactive dashboard creation |

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## Dashboard Insights

![Dashboard](dashboard/Dashboard.png)

### Key Highlights:
- **Content Growth**: Massive spike in content added between 2016–2019
- **Popular Genres**: Dramas, Documentaries, Comedy dominate top categories
- **Type Split**: 69.7% Movies vs 30.3% TV Shows
- **Top Ratings**: Most content rated TV-MA, TV-14
- **Peak Year**: 2019 had the highest number of new additions

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## File Structure

Netflix-Data-Analysis/

├── dashboard/
│ ├── Dashboard.twb # Tableau workbook
│ └── Dashboard.png # Dashboard image

├── data/
│ ├── netflix_data.csv # Raw data
│ └── netflix_data.xlsx # Cleaned or used in Tableau

├── notebooks/
│ └── netflix_data_analysis.ipynb # EDA notebook

└── README.md

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## What I Learned

- Conducting deep EDA on media/entertainment datasets
- Identifying content trends using date-time analysis
- Visual storytelling using Tableau
- Structuring professional GitHub repos

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*This project is part of my Data Analyst Portfolio.*