Global Happiness Trends Project
At a glance
- Analysis: November 2025 (Python / Kaggle)
- Dashboard: December 2025 (Tableau)
- Category: Analysis & interactive dashboard
Project overview
This project explores what drives happiness across countries using the World Happiness Report. Analysis in Python (Kaggle) identifies patterns and correlations in economic, social, and health-related factors; an interactive Tableau dashboard then makes those insights explorable for a broad audience.
The work spans two linked deliverables: a reproducible notebook that examines how GDP, social support, life expectancy, freedom, generosity, and corruption perception relate to national happiness, and a Tableau dashboard that visualizes global and regional trends, comparisons over time, and factor-level views. Together they show how rigorous analysis can be translated into accessible visualization.
Dataset / source
World Happiness Report data (country-level happiness scores and contributing indicators), used consistently across the Python analysis and the Tableau build.
Tools used
Python, pandas, matplotlib/seaborn (in Kaggle); Tableau Public for the dashboard.
What problem you solved
Raw happiness and socio-economic data needed to be turned into clear, evidence-based answers about what drives national well-being, and those answers needed to be communicated without requiring statistical expertise—first through a documented notebook, then through an interactive dashboard for exploration and education.
Key insights
- Drivers of happiness
Economic and social factors (e.g., GDP per capita, social support, health, freedom) show interpretable relationships with happiness scores in line with the World Happiness framework. - Regional and temporal patterns
Country and regional comparisons and time-based views highlight where scores cluster and how they shift across years. - Notebook to dashboard
Analysis steps in Python support and validate the story told in Tableau (maps, trends, factor breakdowns). - Dashboard interactivity
Users can filter by country, region, and year and use tooltips for detail without rebuilding the analysis.
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