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What is lakeFS?

lakeFS enables you to manage your data lake in a manner akin to source code management, promoting parallel experimentation pipelines alongside continuous integration and deployment for your data workflows. This innovative platform enhances the efficiency of engineers, data scientists, and analysts who are at the forefront of data-driven innovation. As an open-source tool, lakeFS significantly boosts the robustness and organization of data lakes built on object storage systems. With lakeFS, users can carry out dependable, atomic, and version-controlled actions on their data lakes, ranging from complex ETL workflows to sophisticated data science and analytics initiatives. It supports leading cloud storage providers such as AWS S3, Azure Blob Storage, and Google Cloud Storage (GCS), ensuring versatile compatibility. Moreover, lakeFS integrates smoothly with numerous contemporary data frameworks like Spark, Hive, AWS Athena, and Presto, facilitated by its API that aligns with S3. The platform's Git-like framework for branching and committing allows it to scale efficiently, accommodating vast amounts of data while utilizing the storage potential of S3, GCS, or Azure Blob. Additionally, lakeFS enhances team collaboration by enabling multiple users to simultaneously access and manipulate the same dataset without risk of conflict, thereby positioning itself as an essential resource for organizations that prioritize data-driven decision-making. This collaborative feature not only increases productivity but also fosters a culture of innovation within teams.

What is Lentiq?

Lentiq provides a collaborative data lake service that empowers small teams to achieve remarkable outcomes. This platform enables users to quickly perform data science, machine learning, and data analysis on their preferred cloud infrastructure. With Lentiq, teams can easily ingest data in real-time, process and cleanse it, and share their insights with minimal effort. Additionally, it supports the creation, training, and internal sharing of models, fostering an environment where data teams can innovate and collaborate without constraints. Data lakes are adaptable environments for storage and processing, featuring capabilities like machine learning, ETL, and schema-on-read querying. For those exploring the field of data science, leveraging a data lake is crucial for success. In an era defined by the decline of large, centralized data lakes post-Hadoop, Lentiq introduces a novel concept of data pools—interconnected mini-data lakes spanning various clouds—that function together to create a secure, stable, and efficient platform for data science activities. This fresh approach significantly boosts the agility and productivity of data-driven initiatives, making it an essential tool for modern data teams. By embracing this innovative model, organizations can stay ahead in the ever-evolving landscape of data management.

Media

Media

Integrations Supported

Amazon Athena
Amazon Kinesis
Amazon S3
Amazon Web Services (AWS)
Apache Airflow
Apache Flink
Apache Hive
Apache Kafka
Apache Spark
Astro by Astronomer
Azure Blob Storage
Databricks
Delta Lake
Google Cloud Storage
Hadoop
Jupyter Notebook
Looker
MLflow
MinIO
Presto

Integrations Supported

API Availability

Has API

API Availability

Pricing Information

Pricing not provided

Pricing Information

Pricing not provided

Supported Platforms

SaaS

Supported Platforms

SaaS

Customer Service / Support

Web-Based Support

Customer Service / Support

Not specified

Training Options

Documentation Hub
Webinars

Training Options

Not specified

Company Facts

Organization Name

Treeverse

Date Founded

2020

Company Location

Israel

Company Website

lakefs.io

Company Facts

Organization Name

Lentiq

Date Founded

2019

Company Location

United States

Company Website

lentiq.com

Categories and Features

Data Management

Not specified

Categories and Features

Big Data

Not specified

Data Analysis

Not specified

Data Lake

Not specified

DataOps

Not specified

Machine Learning

Not specified

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