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Creating a churn prediction

2 Tarefas

15 min

Visível para: All users Applies to: Pega Customer Decision Hub 8.7
Beginner
Inglês

Scenario

U+ Bank uses Pega Customer Decision Hub™ to personalize the credit card offer a customer is presented on their website. If a customer is eligible for multiple offers, artificial intelligence (AI) decides which offer to show.

To customers that are likely to leave the bank soon, the bank wants to make a proactive retention offer instead of a credit card offer. The bank has recorded historical churn data for its customer base, which a data scientist used to create a churn model. You create a prediction that is driven by the churn model.

Use the following credentials to log in to the exercise system:

Role User name Password
Data scientist DataScientist rules

Your assignment consists of the following tasks:

Task 1: Create a new prediction

As a data scientist, create a new prediction to calculate churn risk.

Task 2: Replace the scorecard with the churn model in the new prediction

Replace the placeholder scorecard with the Churn model from the Model list in the new prediction.

 

Você deve iniciar sua própria instância da Pega para concluir este Challenge.

A inicialização pode leva até cinco minutos, portanto tenha paciência.

Challenge Walkthrough

Detailed Tasks

1 Create a new prediction

  1. On the exercise system landing page, click Pega CRM suite to log in to Prediction Studio.
  2. Log in as a data scientist with user name DataScientist and password rules.
  3. In the upper right, click New to create a prediction.
  4. Ensure that Customer Decision Hub is selected, and then click Next.
  5. In the Prediction name field, enter Predict Churn Propensity.
  6. In the Outcome field, select Churn.
  7. In the Subject field, select Customer.
    Create a prediction
  8. Click Create.
  9. In the upper right, click Save.

2 Replace the scorecard with the churn model in the new prediction

  1. In the main prediction window, go to the Models tab, and click the More icon for the Predict Churn Propensity prediction.
  2. Click Replace model.
    Replace model
  3. Ensure that Model is selected, and then click Next.
  4. Clear the Compare the models check box.
  5. In the Model list tab, select the ChurnPML model.
    Select model
  6. Click Next.
  7. Click Replace.
  8. When the status of the Churn model changes to Ready for review, click ChurnPML (M-1).
    Ready for review
  9. In the upper right, click Evaluate.
  10. Ensure that Approve candidate model and replace current active model is selected.
  11. In the Reason field, enter the appropriate information.
  12. Click Save.
  13. Confirm that the Churn model has replaced the placeholder scorecard as Active in the prediction.
    Confirm replacement

Este Desafio serve para praticar o que você aprendeu nos seguintes Módulo:


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