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Data Visualization & Analysis

Exploratory data analysis and visualization across business performance, public health, and environmental datasets. Each project follows a consistent analytical workflow: data acquisition and cleaning, exploratory analysis, visualization, and interpretation of findings.


Projects

Project Domain Description Tools
Marketing & Product Performance Business End-to-end business analysis - ROI by channel, product segmentation, correlation heatmaps, and spend optimization recommendations Pandas · Seaborn · Matplotlib
Child Mortality Trends 1900–2018 Public Health 119-year longitudinal analysis across four pediatric age groups, isolating the 1918 influenza anomaly against the long structural decline Seaborn · Matplotlib
Car Dealership Inventory Analysis Automotive Pricing distributions, body type and engine sizing trends, and curb weight analysis across dealership inventory Pandas · Matplotlib
Forest Fires by State 1992–2015 Environmental Decade-averaged fire counts, acres burned, and burn duration by state, structured for long-range disaster planning insight Pandas

Stack

Python Pandas NumPy Seaborn Matplotlib Jupyter


Repository Structure

Data-Visualization/
├── Leah_Nicholson_Business_Case_Study.ipynb    # Marketing analysis
├── MortalityAnalysis/                          # Child mortality project
├── CarInventory_DataAnalysis/                  # Dealership inventory project
└── ForestFires_DataPreparation/                # Wildfire trends project

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Exploratory data analysis and visualization across business, public health, and environmental datasets

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