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📚 This repository is my personal data science learning hub. Explore my journey from the very basics to advanced techniques. Dive into Python, data manipulation, analysis, visualization, and machine learning. Join me as I learn, grow, and experiment in the world of data science.
Created a Billing System where user can login as an Admistrator or as a Buyer with their registered Email ID and Password. user can also do data adjustment, add , modify or delete any file record.
This repository showcases my work as a data analyst in the domain of supply chain management. Leveraging a diverse set of data analysis tools, including Power BI, Excel, and SQL, I have meticulously constructed a comprehensive supply chain management solution.
This weeks project was to create an Express backend API with at least three RESTful endpoints, returning arrays or single items using hard-coded JSON data and array methods. The API was supposed to be RESTful and there should be API-documentation at the "/"-endpoint.
In this project, we will perform Exploratory Data Analysis (EDA) on three datasets, `ufo`, `u.user` and `movies`. We will use the Python library Pandas for data cleaning, transforming, and manipulation and Matplotlib for data visualization.
HBFC Bank's project analyzes 5000 customer records, aiming to convert depositors into personal loan customers. Advanced skills in statistical analysis and tools like Excel uncover key insights, including a 9.6% personal loan uptake. Diverse demographics and strategic findings inform recommendations for future marketing campaigns.
In this project, I explored data from BusinessFinancing.co.uk on the world's oldest businesses: when were they founded, and which industries do they belong to?
Explore honey production dynamics (1998-2012) in the U.S. amid declining bee populations using Python's seaborn and matplotlib. Visualize key attributes like colonies, yield, production, price, and stocks to draw insights into the impact on American honey agriculture.
In this notebook, we will explore this phenomenon using age distribution data to see if we can reproduce a difference in average age at death purely from the changing rates of left-handedness over time, refuting the claim of early death for left-handers.
"IPL Match Bidding App - Pie-in-the-Sky" is a SQL tool decoding IPL match data. It analyzes bidder success, popular stadiums, and toss impact. Tailored for IPL decision-makers, it simplifies complex data for strategic insights in just a few clicks.