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MohammedAhmed-01/Egypt_Real_Estate_Data_Analysis_2026

Domain:

socioeconomic

Record type:

dataset
Creator:
Moh
Host:
A complete analytics pipeline on Egypt's real estate market — from raw CSV ingestion all the way to interactive BI dashboards. 📊 39,713 Listings 🧬 53 Raw Columns 📓 4 Notebooks 📈 4+3 Dashboard Pages 🤖 6 ML Models 🗺️ 6 Cities --- ## 📑 Table of Contents | | | | | |:--:|:--:|:--:|:--:| | 🎯 Overview | 📑 Deliverables | 🏗️ Architecture | 🗃️ Dataset | | 🌳 Structure | 🔬 Notebooks | 📊 Dashboards | 📦 Outputs | | 🚀 Setup | 🧰 Libraries | 🧠 Design Decisions | 📜 License | --- ## 🎯 Project Overview > **A complete analytics pipeline on Egypt's real estate market** — from raw CSV ingestion all the way to interactive BI dashboards. This project deliberately **separates concerns**: - 🧪 **The Notebooks** are the *analytical engine* — where heavy statistical modeling, Machine Learning, and Natural Language Processing live. - 📊 **The Dashboards** are the *reporting layer* — strictly descriptive & diagnostic, powered by clean data only, so they load instantly and stay easy to read for stakeholders. **Business questions answered:** 🏙️ Which cities and property types command the highest price per sqm? 🏊 What amenities and specs correlate with price premiums? 📈 How does listing volume and price move across months and seasons? 💬 Do description sentiment & topics relate to price? (Notebook only) 🤖 Can we predict price and classify Buy vs Rent? (Notebook only) --- ## 📑 Project Deliverables & Documentation | 📄 Artifact | 🎯 Purpose | 🔗 Access | |:---|:---|:---:| | **Insights Report** | Deep-dive analysis, key findings & statistical summaries | View Report | | **Stakeholder Presentation** | Executive summary, visual story & strategic recommendations | View Presentation | | **Business Impact & Design** | ROI analysis, design rationale & decision-making framework | View Document | --- ## 🏗️ Architectural Flow We separate **BI Reporting** (clean, fast, descriptive) from **Advanced Analytics** (notebook-based ML/NLP). The dashboards consume **only the cleaned dataset** — keeping them performant and clutter-free. ML/NLP outputs are captured as documented insights, not embedded v …

Visit

github.com

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