Customer Loyalty Casestudy - The Information Factory The Information Factory

A client was concerned at high customer churn rates – they lost approximately 15% of their accounts each year. Their brand image suffered and sales teams spent a lot of time resolving customer complaints instead of selling.

Requirement

Our client wanted to increase customer satisfaction by improving service quality and consistency. To help achieve this they required a predictive tool that identified ‘at risk’ customers & the reasons for the at risk status so they could resolve issues and prevent customer churn rather than merely respond to it.

Solution

  • Data model predicts the likelihood of a customer leaving and a ranking of most ‘at risk’ customers.
  • Explanations for each risk rating, giving sales the opportunity to research possible corrective action before meeting the customer.
  • Customer loss rates fell by 18% in the pilot country (USA) and the solution is being rolled out to other regions.
Dashboard

Technical specifications

• VMWare Virtual Server

• OS: Red Hat Enterprise Linux

• DB: Oracle

• Middleware: Apache Tomcat, Java

• Frontend: Angular

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