A Scikit-learn project for selecting, tuning, and evaluating supervised learning models on CharityML donor data.
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Updated
Aug 7, 2026 - Jupyter Notebook
A Scikit-learn project for selecting, tuning, and evaluating supervised learning models on CharityML donor data.
We developed a model that will predict the likelihood that a given employed citizens of CA as a potential donor of a fictitious charity organization, Charity ML.
Build an algorithm to best identify potential donors of CharityML
Finding doners for charityML
Supervised Learning - Finding Donors for CharityML
Udacity Machine Learning Nanodegree Supervised Learning Project
Finding Donor for CharityML - Machine Learning Nanodegree from Udacity
This project help identify people who are most likely to donate to CharityML(fictious charity organization)
Machine learning project that predicts potential donors for CharityML using census data and supervised learning techniques.
Finding Donors for CharityML using supervised learners.
Employing several supervised algorithms to accurately model individuals' income.
CharityML is a fictitious charity organization that was established to provide financial support for people eager to learn machine learning.
Project-1 of Udacity's Introduction to Machine Learning with TensorFlow Nanodegree. "Finding Donors for CharityML" is a Supervised Learning Project with Scikit-learn that aims to build a model that accurately predicts whether an individual earns more than $50,000
Finding donors using supervised learning
Applying Supervised learning techniques on data to help CharityML identify people most likely to donate to their cause.
Applying Supervised learning techniques on data to help CharityML identify people most likely to donate to their cause.
Machine Learning Engineer Nanodegree, Supervised Learning, Finding Donors for CharityML
Applied supervised learning techniques on data collected for the U.S. census to help CharityML (a fictitious charity organization) identify people most likely to donate to their cause.
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