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What is dbt?

dbt is the leading analytics engineering platform for modern businesses. By combining the simplicity of SQL with the rigor of software development, dbt allows teams to: - Build, test, and document reliable data pipelines - Deploy transformations at scale with version control and CI/CD - Ensure data quality and governance across the business Trusted by thousands of companies worldwide, dbt Labs enables faster decision-making, reduces risk, and maximizes the value of your cloud data warehouse. If your organization depends on timely, accurate insights, dbt is the foundation for delivering them.

What is BettrData?

Our cutting-edge automated data management system enables businesses to reduce or reallocate the number of full-time employees needed for their data processes. This transformation simplifies what is usually a laborious and expensive operation, making it more accessible and cost-effective for organizations. Due to the sheer amount of unreliable information available, many companies find it challenging to concentrate on improving data quality while continuously processing data. By utilizing our platform, businesses can adopt a more proactive approach to ensuring data integrity. With a thorough overview of all incoming data and a built-in alert mechanism, our solution ensures compliance with your predefined data quality standards. We are excited to present a revolutionary tool that integrates multiple costly manual tasks into a single, streamlined platform. The BettrData.io solution is designed for ease of use and can be quickly implemented with just a few simple adjustments, enabling organizations to optimize their data operations almost instantly. In a world increasingly dominated by data, having access to this kind of platform can dramatically enhance overall operational effectiveness. Furthermore, organizations can expect to see a significant return on investment as they harness the power of automated data management.

Media

Media

Integrations Supported

Databricks
Snowflake
Acryl Data
Blotout
Braight
Cuckoo
DQOps
Datafold
Decube
GetDot.ai
Hex
Lightdash
OpenMetadata
Openbridge
Pantomath
PopSQL
Secoda
Snowflake CoCo
Validio
Zipher

Integrations Supported

Databricks
Snowflake

API Availability

API Availability

Pricing Information

$100 per user/ month
Free Version
Free Trial Offered?

Pricing Information

Pricing not provided

Supported Platforms

SaaS

Supported Platforms

SaaS

Customer Service / 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

Not specified

Company Facts

Organization Name

dbt Labs

Date Founded

2016

Company Location

United States

Company Website

www.getdbt.com

Company Facts

Organization Name

BettrData

Date Founded

2020

Company Location

United States

Company Website

bettrdata.io

Categories and Features

Big Data

Your training encompasses information up until October 2023.

Collaboration
Data Cleansing

Data Catalog

Not specified

Data Engineering

Not specified

Data Integration

Not specified

Data Lineage

Database Change Impact Analysis
Filter Lineage Links

Data Modeling

Not specified

Data Pipeline

dbt serves as the driving force behind the transformation layer in contemporary data pipelines. After data is ingested into a warehouse or lakehouse, dbt allows teams to cleanse, model, and document it, preparing it for analysis and AI applications. With dbt, teams can: - Scale the transformation of raw data using SQL and Jinja. - Manage pipeline orchestration with integrated dependency management and scheduling features. - Establish trust through automated testing and continuous integration processes. - Gain insights into data lineage across models and columns for quicker impact evaluation. By incorporating software engineering methodologies into pipeline development, dbt empowers data teams to create dependable, production-quality pipelines, thereby speeding up the journey to actionable insights and providing data that is ready for AI applications.

Not specified

Data Preparation

dbt enhances the process of data preparation by bringing both structure and scalability, allowing teams to refine, transform, and organize raw data within the data warehouse itself. Moving away from fragmented spreadsheets and tedious manual processes, dbt leverages SQL along with industry-standard software engineering practices to ensure that data preparation is consistent, repeatable, and fosters collaboration. With dbt, teams can: - Clean and normalize data using reusable models that are version-controlled. - Implement business rules uniformly across all datasets. - Ensure output accuracy through automated testing prior to making data available to analysts. - Provide documentation and context so that every processed dataset includes lineage and clear definitions. By adopting a code-centric approach to data preparation, dbt guarantees that the datasets produced are not merely temporary solutions but are reliable, governed, and ready for production, allowing them to grow alongside the organization.

Collaboration Tools
Data Blending
Data Cleansing

Data Quality

Your knowledge is based on information available until October 2023.

Not specified

DataOps

Not specified

ETL

dbt revolutionizes the transformation aspect of ETL (Extract, Transform, Load) processes. By moving away from outdated pipelines and opaque transformation methods, dbt enables data teams to create, validate, and document their transformations directly within their data warehouse or lakehouse environment. With the capabilities of dbt, teams are able to: - Convert unrefined data into analytics-ready formats using SQL and Jinja. - Enhance reliability with integrated testing, version control, and continuous integration/continuous deployment (CI/CD) practices. - Promote uniform workflows among teams through the use of reusable models and collaborative documentation. - Utilize contemporary platforms such as Snowflake, Databricks, BigQuery, and Redshift for scalable transformation efforts. By concentrating on the transformation layer, dbt facilitates organizations in accelerating the development of their data pipelines, minimizing data liabilities, and providing reliable insights more swiftly—serving as a perfect complement to ingestion and loading tools within a modern ELT framework.

Data Filtering
Data Quality Control

Semantic Layer

Not specified

Categories and Features

Data Cleansing

Not specified

Data Collection

Not specified

Data Deduplication

Not specified

Data Enrichment

Not specified

Data Management

Not specified

Data Pipeline

Not specified

Data Preparation

Not specified

DataOps

Not specified

Workflow Automation

Not specified

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