Role Overview
Arcadia is hiring a mid-level Analytics Engineer, Life Sciences Delivery Operations. This is a full-time remote role, with the team based in Remote. posted yesterday. Full responsibilities, required qualifications, and the apply link are listed in the description below.
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Job description
Why This Role Is Important to Arcadia
Life sciences customers depend on Arcadia's real-world data to power drug development, safety surveillance, and outcomes research. As LS deal volume accelerates, the engineering foundation underneath delivery, i.e. quality, automation, data transformation evolution, and scale must keep pace.
This is a hybrid role at the intersection of data engineering, data analysis, and delivery operations. You'll refactor, scale, own, and operate an automated RWD data delivery pipeline via dbt/AWS architecture, serving as the primary technical point of contact for channel partners.
You write production-grade PySpark and dbt one day and may facilitate a data inquiry the next. You care deeply about both the correctness of the code and the clarity of the answer it produces. You're as comfortable in a GitHub PR as you are in a partner meeting.
This is a foundational engineering role in a growing LS organization. The right person will help build the team as the business scales.
What Success Looks Like
In 3 months
Deep familiarity with the end-to-end LS pipeline-from ingestion through dbt transformation, de-identification, and delivery-including the current Snowflake-based scripts and what will replace them
Ownership of the channel partner data inquiry queue; resolving standard requests independently by leveraging AI agents, closing out in writing and in accordance with SLAs
First contribution to the delivery pipeline codebase: a new or refactored dbt model, a PySpark debugging fix, or a validated QC delivery configuration
Thorough understanding of the monthly delivery cycle: Argo orchestration, Snowflake execution, manifest generation, Datavant/HealthVerity/IQVIA tokenization, and delivery QC
In 6 months
Core delivery endpoint configurations migrated from manual Snowflake runbook to config-as-code; existing channel partners delivered with minimal manual script execution
Contributing increasingly receptive metrics toward a data quality scorecard, tracking pipeline health, completeness, and refresh SLAs across all channel partners
PHI de-identification compliance implementation process owned end-to-end, with clear documentation of rules applied
Strong working partnerships established with platform engineering (Data Engineering, TechOps) with clear interfaces and shared standards
In 12 months
Monthly delivery cycle runs automatically; manual Snowflake execution eliminated; delivery cycle time reduced
Recognized internally as the technical authority on the LS data engineering architecture and delivery pipeline
Test suites, acceptance criteria, and release documentation authored for all major pipeline changes
Potentially beginning to mentor a junior team member as the LS delivery organization grows
About Arcadia
Arcadia
arcadia.com
8 other open roles at Arcadia on TryApplyNow.
Frequently Asked Questions
How do I apply for the Analytics Engineer, Life Sciences Delivery Operations position at Arcadia?
Use the Apply button above to submit your application directly to Arcadia. Most applications take less than 5 minutes if your resume and contact details are ready, and you'll be routed to the employer's official application system to finish.
Is the Analytics Engineer, Life Sciences Delivery Operations role at Arcadia remote?
Yes. This is a remote role. The team is based in Remote, but the position itself does not require relocating to that office.
What does a Analytics Engineer, Life Sciences Delivery Operations at Arcadia earn?
Arcadia has not disclosed a salary range in this posting. Many employers share specifics later in the interview process; you can also ask during a recruiter screen if compensation transparency is important to you.
When was the Analytics Engineer, Life Sciences Delivery Operations role at Arcadia posted?
This role was posted on July 21, 2026 (yesterday). It's still listed as actively hiring; we re-confirm openings against the source system multiple times per day and remove closed roles.
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