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What is DataOps.live?

Design a scalable framework that prioritizes data products, treating them as essential components of the system. Automate and repurpose these data products effectively while ensuring compliance and strong data governance practices are in place. Manage the expenses associated with your data products and pipelines, particularly within Snowflake, to optimize resource allocation. For this leading global pharmaceutical company, data product teams stand to gain significantly from advanced analytics facilitated by a self-service data and analytics ecosystem that incorporates Snowflake along with other tools that embody a data mesh philosophy. The DataOps.live platform is instrumental in helping them structure and leverage next-generation analytics capabilities. By fostering collaboration among development teams centered around data, DataOps promotes swift outcomes and enhances customer satisfaction. The traditional approach to data warehousing has often lacked the flexibility needed in a fast-paced environment, but DataOps can transform this landscape. While effective governance of data assets is essential, it is frequently regarded as an obstacle to agility; however, DataOps bridges this gap, fostering both nimbleness and enhanced governance standards. Importantly, DataOps is not solely about technology; it embodies a mindset shift that encourages innovative and efficient data management practices. This new way of thinking is crucial for organizations aiming to thrive in the data-driven era.

What is DataBuck?

Ensuring the integrity of Big Data Quality is crucial for maintaining data that is secure, precise, and comprehensive. As data transitions across various IT infrastructures or is housed within Data Lakes, it faces significant challenges in reliability. The primary Big Data issues include: (i) Unidentified inaccuracies in the incoming data, (ii) the desynchronization of multiple data sources over time, (iii) unanticipated structural changes to data in downstream operations, and (iv) the complications arising from diverse IT platforms like Hadoop, Data Warehouses, and Cloud systems. When data shifts between these systems, such as moving from a Data Warehouse to a Hadoop ecosystem, NoSQL database, or Cloud services, it can encounter unforeseen problems. Additionally, data may fluctuate unexpectedly due to ineffective processes, haphazard data governance, poor storage solutions, and a lack of oversight regarding certain data sources, particularly those from external vendors. To address these challenges, DataBuck serves as an autonomous, self-learning validation and data matching tool specifically designed for Big Data Quality. By utilizing advanced algorithms, DataBuck enhances the verification process, ensuring a higher level of data trustworthiness and reliability throughout its lifecycle.

Media

Media

Integrations Supported

Amazon Web Services (AWS)
Microsoft Azure
Snowflake
Alteryx
Chartio
Collibra
Informatica Cloud Data Integration
JupyterHub
Okera
Python
Qlik Application Automation
Soda
Stitch
ThoughtSpot
data.world
dbt

Integrations Supported

Amazon Web Services (AWS)
Microsoft Azure
Snowflake
Azure Cosmos DB
Google Cloud BigQuery
Google Cloud Dataflow
Google Cloud Platform

API Availability

Has API

API Availability

Has API

Pricing Information

Pricing not provided
Free Trial Offered?

Pricing Information

Consumption-based and annual fixed licensing fee are both available.

Supported Platforms

SaaS

Supported Platforms

SaaS
On-Prem
Linux

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Customer Service / Support

Standard Support
Web-Based Support

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Company Facts

Organization Name

DataOps.live

Date Founded

2020

Company Location

London, UK

Company Website

www.dataops.live/

Company Facts

Organization Name

FirstEigen

Date Founded

2015

Company Location

United States

Company Website

firsteigen.com/databuck/

Categories and Features

Data Collaboration

Not specified

Data Governance

Not specified

Data Pipeline

Not specified

Data Quality

Not specified

DataOps

Not specified

Metadata Management

Not specified

Categories and Features

AI Data Analytics

Not specified

Big Data

High Volume Processing

Data Engineering

Not specified

Data Governance

Not specified

Data Intelligence

Not specified

Data Management

Not specified

Data Matching

Not specified

Data Observability

Not specified

Data Pipeline

Not specified

Data Quality

Data Profililng

Data Validation

Not specified

DataOps

Not specified

Reconciliation

Not specified

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