Churn prediction with PySpark

Overview

Churn Prediction

alt text

Objective

It is expected to develop a machine learning model that can predict customers who will leave the company.

About Dataset

Consists of 10000 observations and 12 variables.
The independent variables contain information about customers.
The dependent variable represents the customer abandonment status.

Variables

  • Surname – Customer surname
  • CreditScore – Customer's credit score
  • Geography – Country where the customer is located
  • Gender – Customer's gender
  • Age – Customer's age
  • Tenure – Information on how many years of customer it is
  • NumOfProducts – Used bank product
  • HasCrCard – Credit card status (0=No,1=Yes)
  • IsActiveMember – Active Membership status (0=No,1=Yes)
  • EstimatedSalary – Customer's estimated salary
  • Exited: – Exited or not (0=No,1=Yes)
This project is the implementation template for HW 0 and HW 1 for both the programming and non-programming tracks

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