Data QA Engineer

Ex Parte, Inc

Bethesda (MD)

On-site

USD 90,000 - 120,000

Full time

14 days+

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Job summary

Ex Parte, Inc in Bethesda, MD is seeking talented senior data engineers passionate about big data, AI, and machine learning. You will take ownership of data quality and design automated testing frameworks for data ingestion pipelines. The ideal candidate has 5+ years in QA, with skills in SDLC, Python, and SQL.

If you're entrepreneurial and thrive in a fast-paced environment, join us in revolutionizing decision-making in legal processes. We offer opportunities for professional growth and development.

Qualifications

  • 5+ years of work experience in QA, preferably in data or relevant space.
  • Demonstrable knowledge of SDLC, Python, and SQL.
  • Excellent verbal and written communication skills.

Responsibilities

  • Take ownership of end-to-end data quality.
  • Build and automate testing frameworks around data ingestion pipelines.
  • Collaborate with analytic teams to conduct data quality investigations.

Skills

SDLC
Python
SQL
QA testing
Communication skills

Tools

Databricks
Azure ML
PowerBI
Tableau

Job description

Ex Parteprovides our customers with the data and insight to make smart and informed decisions on the most important legal issues facing their organizations.

We are is looking for talented, enthusiastic senior data engineers who share our passion for big data, AI, and machine learning and are excited by seemingly-impossible challenges. As an early employee, you must be amazingly entrepreneurial and thrive in a fast-paced environment where the solutions aren’t predefined.

Every year, corporations spend more than $250B on litigation in the United States alone. And yet, critical decisions such as whether to litigate or settle, or where to file suit or which attorney to hire, are all made the same way they were 100 years ago.

We are applying artificial intelligence, machine learning, and natural language processing to provide our customers with the insight they need to make highly informed decisions and gain a winning advantage. Think of it like Moneyball, but for a marketmore than 20x the size of Major League Baseball.

Job Description
Responsibilities
  • Take ownership of end to end data quality
  • Understand and Contribute to the event model design
  • Build and automate testing frameworks around data ingestion pipelines.
  • Write complex SQL queries on tables with hundreds of millions of records and ensure data integrity is maintained throughout the ETL lifecycle.
  • Design test cases and write python/SQL scripts to validate data integrity and identify gaps and opportunities in our pipelines.
  • Track data issues and work with team leads from discovery to resolution.
  • Collaborate with the analytic teams to conduct data quality investigations, improve automation and tools.
  • Review current tools and enhance them to help with data integrity.
Qualifications
Minimum Qualifications
  • 5+ years of work experience in QA, preferably in data or relevant space
  • Demonstrable knowledge, experience, skill, and proficiency with the following: SDLC, Python (at least reading), SQL, Experience with different facets of QA tests such as functional progression & regression, integration, performance, load, UAT, and operational readiness testing
  • Must be self-motivated, able to work independently, and thrive in a fast-paced, multi-tasking, high productivity environment while maintaining excellent working relationships with people in a wide variety of functional areas
  • Excellent verbal and written communication skills
Preferred Qualifications
  • Applied experience with Databricks and/or Azure ML
  • Strong coding abilities in one or more scripting languages like Python or SQL
  • Understanding of compliance, security, and risk domains along with associated patterns and data elements
  • Use of one of the following vendor reporting solutions: PowerBI or Tableau
  • Understanding of product and services activation, use, and transaction models and data
  • Understanding of statistical analysis and machine learning tools and practices
  • Understanding of Cloud-centric data processing and visualization approaches including SQL and NoSQL databases with exposure to Azure SQL, Azure Cosmos DB, Data Factory, Synapse, Azure Data Lake, etc
  • Familiarity with Agile software delivery including application lifecycle mgmt (Jira/Azure DevOps/VSTS, Git).
EEO Statement

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