Remove Data Preparation Remove Deep Learning Remove Events
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Predictive Analytics: 4 Primary Aspects of Predictive Analytics

Smart Data Collective

Regardless of your industry, whether it’s an enterprise insurance company, pharmaceuticals organization, or financial services provider, it could benefit you to gather your own data to predict future events. Deep Learning, Machine Learning, and Automation.

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How Light & Wonder built a predictive maintenance solution for gaming machines on AWS

AWS Machine Learning Blog

Working with AWS, Light & Wonder recently developed an industry-first secure solution, Light & Wonder Connect (LnW Connect), to stream telemetry and machine health data from roughly half a million electronic gaming machines distributed across its casino customer base globally when LnW Connect reaches its full potential.

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Accelerate client success management through email classification with Hugging Face on Amazon SageMaker

AWS Machine Learning Blog

The Github merge event triggers our Jenkins CI pipeline, which in turn starts a SageMaker Pipelines job with test data. Model deployment – After making sure that everything is running as expected, data scientists merge the develop branch into the primary branch. A test endpoint is deployed for testing purposes. Use Version 2.x

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Your guide to generative AI and ML at AWS re:Invent 2024

AWS Machine Learning Blog

The excitement is building for the fourteenth edition of AWS re:Invent, and as always, Las Vegas is set to host this spectacular event. This session covers the technical process, from data preparation to model customization techniques, training strategies, deployment considerations, and post-customization evaluation.

AWS 100
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How Thomson Reuters delivers personalized content subscription plans at scale using Amazon Personalize

AWS Machine Learning Blog

A DataBrew job extracts the data from the TR data warehouse for the users who are eligible to provide recommendations during renewal based on the current subscription plan and recent activity. The real-time integration starts with collecting the live user engagement data and streaming it to Amazon Personalize.

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Principles of MLOps

Heartbeat

First, we have data scientists who are in charge of creating and training machine learning models. They might also help with data preparation and cleaning. The machine learning engineers are in charge of taking the models developed by data scientists and deploying them into production.

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How Kakao Games automates lifetime value prediction from game data using Amazon SageMaker and AWS Glue

AWS Machine Learning Blog

The result of these events can be evaluated afterwards so that they make better decisions in the future. With this proactive approach, Kakao Games can launch the right events at the right time. Kakao Games can then create a promotional event not to leave the game. However, this approach is reactive.

AWS 101