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What is HPE Ezmeral ML OPS?

HPE Ezmeral ML Ops presents a comprehensive set of integrated tools aimed at simplifying machine learning workflows throughout each phase of the ML lifecycle, from initial experimentation to full-scale production, thus promoting swift and flexible operations similar to those seen in DevOps practices. Users can easily create environments tailored to their preferred data science tools, which enables exploration of various enterprise data sources while concurrently experimenting with multiple machine learning and deep learning frameworks to determine the optimal model for their unique business needs. The platform offers self-service, on-demand environments specifically designed for both development and production activities, ensuring flexibility and efficiency. Furthermore, it incorporates high-performance training environments that distinctly separate compute resources from storage, allowing secure access to shared enterprise data, whether located on-premises or in the cloud. In addition, HPE Ezmeral ML Ops facilitates source control through seamless integration with widely used tools like GitHub, which simplifies version management. Users can maintain multiple model versions, each accompanied by metadata, within a model registry, thereby streamlining the organization and retrieval of machine learning assets. This holistic strategy not only improves workflow management but also fosters enhanced collaboration among teams, ultimately driving innovation and efficiency. As a result, organizations can respond more dynamically to shifting market demands and technological advancements.

What is Apache PredictionIO?

Apache PredictionIO® is an all-encompassing open-source machine learning server tailored for developers and data scientists who wish to build predictive engines for a wide array of machine learning tasks. It enables users to swiftly create and launch an engine as a web service through customizable templates, providing real-time answers to changing queries once it is up and running. Users can evaluate and refine different engine variants systematically while pulling in data from various sources in both batch and real-time formats, thereby achieving comprehensive predictive analytics. The platform streamlines the machine learning modeling process with structured methods and established evaluation metrics, and it works well with various machine learning and data processing libraries such as Spark MLLib and OpenNLP. Additionally, users can create individualized machine learning models and effortlessly integrate them into their engine, making the management of data infrastructure much simpler. Apache PredictionIO® can also be configured as a full machine learning stack, incorporating elements like Apache Spark, MLlib, HBase, and Akka HTTP, which enhances its utility in predictive analytics. This powerful framework not only offers a cohesive approach to machine learning projects but also significantly boosts productivity and impact in the field. As a result, it becomes an indispensable resource for those seeking to leverage advanced predictive capabilities.

Media

Media

Integrations Supported

HPE Ezmeral

Integrations Supported

AWS Marketplace
Apache HBase
Apache Hadoop YARN
Apache Spark
Docker
Elasticsearch
Java
MySQL
PHP
PostgreSQL
Python
Ruby
Scala

API Availability

API Availability

Has API

Pricing Information

Pricing not provided

Pricing Information

Free
Free Version

Supported Platforms

SaaS
On-Prem

Supported Platforms

Windows
Mac
Linux

Customer Service / Support

Standard Support
Web-Based Support

Customer Service / Support

Web-Based Support

Training Options

Documentation Hub

Training Options

Documentation Hub
Online Training

Company Facts

Organization Name

Hewlett Packard Enterprise

Date Founded

2015

Company Location

United States

Company Website

www.hpe.com/us/en/solutions/ezmeral-machine-learning-operations.html

Company Facts

Organization Name

Apache

Company Location

United States

Company Website

predictionio.apache.org

Categories and Features

Machine Learning

Not specified

Categories and Features

Machine Learning

Not specified

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