Grid Dynamics recognized as Google Cloud leader by Everest Group

Features

Identify Churners

The starter kit provides models that identify churners and quantify the level of risk and expected time to churn for every individual. These insights can be used to devise personalized churn treatment strategies.

Determine the Optimal Treatment Type and Time

Many churn analytics solutions provide only the churn risk scores, making it challenging to operationalize. Our starter kit helps you develop treatment evaluation and optimization models that recommend optimal treatment type and time for each user.

Understand the Churn Drivers

The starter kit uses interpretable AI features provided by Vertex AI and custom diagnostic methods to provide advanced insight into user behavior and patterns that precede churn.

Incorporate User-Generated Content

We provide models that help extract useful signals from user-generated content such as customer reviews and call transcripts. These signals help improve the accuracy of churn prediction and determine your optimal churn prevention strategy.

Leverage the Power of AutoML

Most of the models included in the starter kit leverage Vertex AI AutoML services that help reduce the feature engineering and model design effort.

Industries

Our starter kit is created based on our experience with multiple clients from various industries.

Why Develop Churn Analytics Solutions in Google Cloud

Achieve a Competitive Advantage

Custom solutions that use cloud-native services and open source components are more flexible than third party black box software and offer state-of-the-art machine learning features for accurate prediction and deep insight.

Reduce Implementation Efforts

Advanced cloud native services such as Vertex AutoML and starter kits sharply reduce implementation efforts, bridging the gap between completely custom solutions and inflexible third party products.

Innovate Your Way

Google and Grid Dynamics is a combination that gives you full control over your solution development strategy: build your own team of data and engineering experts, delegate end-to-end solution development to vendors, or combine both approaches with co-innovative engagement.

How It Works

The starter kit includes several components for churn risk evaluation, advanced churn behavior analytics and insight, and treatment optimization.

Organizations are increasingly seeking out solutions that enable them to leverage enterprise AI to deliver enhanced user experiences. This starter kit brings together the technologies customers need to bring AI into their enterprises and derive deeper insights into customer behavior and overall end-user experiences.

Organizations are increasingly seeking out solutions that enable them to leverage enterprise AI to deliver enhanced user experiences. This starter kit brings together the technologies customers need to bring AI into their enterprises and derive deeper insights into customer behavior and overall end-user experiences.

Warren Barkley - Sr Director, Product Management Vertex, Google Cloud at Grid Dynamics
Warren Barkley Sr Director, Product Management Vertex, Google Cloud

Learn More

Churn analytics in the technology and telecom industries using Google Vertex AI: A reference notebook
In this blog post, we develop a reference churn analytics pipeline that helps to evaluate the churn risk for individual users and recommends personalized churn treatment plans that can be executed by marketing teams.
Read more
Customer churn prevention: A prescriptive solution using deep learning
The ability to identify and interpret churn patterns and prescribe the right treatment is as important as achieving churn prediction accuracy. In this article, we discuss how to build a solution that helps quantify, investigate, and fight customer churn, complaints, and any other issues related to customer dissatisfaction.
Read more
How to build and evaluate a Next Best Action model for customer churn prevention
In this article, we describe the design of the Next Best Action model that we commonly use in practice and elaborate on the methodology for offline efficiency evaluation.
Read more

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