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What is Sifflet?

Effortlessly oversee a multitude of tables through advanced machine learning-based anomaly detection, complemented by a diverse range of more than 50 customized metrics. This ensures thorough management of both data and metadata while carefully tracking all asset dependencies from initial ingestion right through to business intelligence. Such a solution not only boosts productivity but also encourages collaboration between data engineers and end-users. Sifflet seamlessly integrates with your existing data environments and tools, operating efficiently across platforms such as AWS, Google Cloud Platform, and Microsoft Azure. Stay alert to the health of your data and receive immediate notifications when quality benchmarks are not met. With just a few clicks, essential coverage for all your tables can be established, and you have the flexibility to adjust the frequency of checks, their priority, and specific notification parameters all at once. Leverage machine learning algorithms to detect any data anomalies without requiring any preliminary configuration. Each rule benefits from a distinct model that evolves based on historical data and user feedback. Furthermore, you can optimize automated processes by tapping into a library of over 50 templates suitable for any asset, thereby enhancing your monitoring capabilities even more. This methodology not only streamlines data management but also equips teams to proactively address potential challenges as they arise, fostering an environment of continuous improvement. Ultimately, this comprehensive approach transforms the way teams interact with and manage their data assets.

What is Data Quality on Demand?

Data plays a vital role in multiple sectors of a business, such as sales, marketing, and finance. To fully leverage this data, it's important to maintain its integrity, protect it, and manage it effectively throughout its entire lifecycle. At Uniserv, we believe that data quality is a core principle of our identity and the services we offer. Our customized solutions convert your customer master data into a crucial asset for your business. The Data Quality Service Hub ensures that your customer data remains of the highest quality across all locations within your organization, including those overseas. We offer services that align your address information with international standards, utilizing the best reference data available. Furthermore, we validate email addresses, phone numbers, and banking information with meticulous attention to detail. If your data has duplicate entries, we can quickly pinpoint them according to your defined business requirements. Often, the identified duplicates can be merged automatically using predefined rules or categorized for manual assessment, which promotes an efficient data management workflow that boosts operational productivity. This thorough strategy for ensuring data quality not only aids in compliance but also builds trust and credibility in your customer relationships, ultimately leading to stronger business outcomes. An unwavering commitment to data quality fosters a culture of accountability within the organization, encouraging all departments to prioritize accurate data handling.

Media

Media

Integrations Supported

Airbyte
Amazon EMR
Amazon QuickSight
Apache Airflow
Apache Hive
Apache Spark
Azure Databricks
Census
Datadog
Firebolt
Fivetran
Hightouch
Microsoft Power BI
MySQL
PagerDuty
PostgreSQL
Prefect
Stitch
dbt

Integrations Supported

SAP Store

API Availability

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

Standard Support
Web-Based Support

Training Options

Documentation Hub
Webinars
Online Training

Training Options

Documentation Hub
Webinars

Company Facts

Organization Name

Sifflet

Company Location

United States

Company Website

www.siffletdata.com

Company Facts

Organization Name

Uniserv

Date Founded

1969

Company Location

Germany

Company Website

www.uniserv.com/en/business-cases/customer-data-management/data-quality/

Categories and Features

Data Catalog

Not specified

Data Engineering

Not specified

Data Lineage

Not specified

Data Observability

Not specified

Data Quality

Not specified

DataOps

Not specified

Observability

Not specified

Categories and Features

Data Quality

Data Deduplication

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