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The latest News and Information on APIs, Mobile, AI, Machine Learning, IoT, Open Source and more!

Monitoring Amazon SageMaker with Datadog

Amazon SageMaker is a fully managed service that enables data scientists and engineers to easily build, train, and deploy machine learning (ML) models. Whether you are integrating a personalized recommendation system into your video streaming application, creating a customer service chatbot, or building a predictive business analytics model, Amazon SageMaker’s robust feature set can simplify your ML workflows.

Data Visualization for Everyone: How To Simplify the Process

Nowadays, data is being generated at an unprecedented pace. Data is collected everywhere, from various social media platforms to e-commerce websites. This explosion of data has made it almost impossible to make sense of it through traditional methods. This is where data visualization comes into the picture. Data visualization enables companies to interpret vast amounts of information and draw conclusions quickly. It allows users to analyze data in a more accessible and straightforward way.

Introducing the Datadog Open Source Hub

At Datadog, we have always been deeply involved with open source software—producing it, using it, and contributing to it. Our Agent, tracers, SDKs, and libraries have been open source from the beginning, giving our customers the flexibility to extend our tools for their own needs. The transparency of our open source components also allows them to fully audit the Datadog software that is running on their systems. But our commitment to open source only starts there.

Understanding Mobile User Journeys

Ensure each user has the best and most optimal mobile experience possible by understanding mobile user journeys. Bring teams together to understand how a user interacts with the mobile application in order to streamline operations and improve their experience. By leveraging data collectors, teams can gain an even deeper understanding of specific items in a shopping cart that was lost, for example, and their associated revenue. This information helps build a conversion chart giving the business an indication of how severe the problem may be to then help prioritize remediation efforts.

The Evolution of Data Center Networking for AI Workloads

Traditional data center networking can’t meet the needs of today’s AI workload communication. We need a different networking paradigm to meet these new challenges. In this blog post, learn about the technical changes happening in data center networking from the silicon to the hardware to the cables in between.

Introducing Tracealyzer SDK for Custom Integrations

Percepio Tracealyzer is available for many popular real-time operating systems (RTOS), including FreeRTOS, Zephyr, and Azure RTOS ThreadX, and also for Linux. But what if you want to use it for another RTOS, one that Percepio doesn’t provide an integration for? Then you’ve been out of luck—until now.

Monitoring Machine Learning

I used to think my job as a developer was done once I trained and deployed the machine learning model. Little did I know that deployment is only the first step! Making sure my tech baby is doing fine in the real world is equally important. Fortunately, this can be done with machine learning monitoring. In this article, we’ll discuss what can go wrong with our machine-learning model after deployment and how to keep it in check.

How Technology Drives Innovation in Business Building Maintenance

In the ever-evolving world of business, one aspect often overlooked but undeniably vital is building maintenance. It's the unsung hero that ensures our workplaces remain safe, comfortable, and conducive to productivity. But what's the driving force behind the transformation of this essential function? It's none other than technology. In today's fast-paced world, where innovation is the key to staying ahead of the curve, technology plays a pivotal role in revolutionizing how we approach building maintenance.