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Associate Client Data Engineer

Job in Washington, District of Columbia, 20022, USA
Listing for: CredLens, LLC
Full Time position
Listed on 2026-07-30
Job specializations:
  • IT/Tech
    Data Engineering, Data Analyst
Salary/Wage Range or Industry Benchmark: 74850 - 91700 USD Yearly USD 74850.00 91700.00 YEAR
Job Description & How to Apply Below

About the Role

As an Associate Client Data Engineer at Cred Lens, you will focus on the client‑onboarding workflow that brings new credential‑issuer data into our platform. You will learn the platform and the fundamentals of production data engineering with direct support from more senior engineers, and gain hands‑on experience across the full onboarding workflow, with a clear path to grow into a broader data‑engineering role over time.

Because so much of the work involves direct client interaction, excellent customer‑service skills and clear communication are essential.

This is an early‑career, hands‑on role focused exclusively on onboarding: partnering directly with clients to receive their data, understanding and documenting the data structure, and cleaning, transforming, and validating the data so it is ready for Cred Lens's data pipeline. This is an excellent opportunity to start a data career from the ground level by continuing to build a data engineering skillset while working in a role that directly impacts end users.

You will work within a small, cohesive Data Engineering team, reporting to the Data Engineering Team Lead. The team is based in Washington, DC. This is a hybrid role requiring in‑person attendance at the office at least two days a week, likely Tuesdays and Thursdays.

Note:

this is not a “big data” or “real‑time” analytics role. It best suits a mission‑aligned individual who cares about using data to create more equitable outcomes and who focuses on quality, reliability, and a smooth client experience.

Context

Cred Lens is building a nonprofit national data trust focused on verified outcomes for non‑degree credentials. The effort is an initiative launched by the Strada Education Foundation in 2024. Cred Lens will deliver actionable insights and power ongoing research for industry‑based, professional, and workforce credentials.

Cred Lens is designed to fill the data gap for non‑degree credentials. The attainment of these credentials is growing, but there is little to no data tracking their outcomes. Cred Lens will offer tailored data analytics and visualizations to credential issuers, workforce training providers, philanthropic funding partnerships, and state system partnerships to support the continuous improvement of credential quality and to support informed funding and scaling decisions.

Key Responsibilities

Core responsibility areas, listed below with the approximate time required for execution in the first 12 – 18 months of work if the incumbent is new to the role:

  • Serve as the data engineering point of contact for new clients during onboarding, guiding them through what data to provide and in what format.
  • Receive incoming client data and perform exploratory data analysis to understand its structure, quality, and completeness.
  • Identify and flag missing, malformed, or inconsistent fields early, and coordinate with the client to resolve them.
  • Clean, transform, and validate client data so it conforms to Cred Lens' standards and is ready for downstream ingestion.
  • Build and run the models and transformations that move a client's data through the onboarding stages of the pipeline, using SQL, Python, DBT, and Airflow.
  • Document each client's onboarding: data sources, decisions made, and any exceptions, contributing to shared onboarding procedures and templates.
  • Track onboarding progress and time, and surface areas of friction to improve the process so that it becomes faster and more repeatable over time.
  • Work with the broader Data Engineering team to research, learn, and implement new improvements to the onboarding pipeline’s efficiency & scalability so it can grow with us.
Qualifications and Experience Education
  • Bachelor's degree in computer science, information systems, data science, or a related field is required. OR, equivalent practical experience is required, at least two years.
Experience Required
  • Suitable for a new or recent graduate; no prior professional experience required. Internships, academic projects, or other hands‑on data work are a plus, as is a demonstrated ability to learn quickly.
  • Working proficiency in SQL and Python for data manipulation and analysis.
  • Some past…
Position Requirements
10+ Years work experience
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