M2
DEM.GEN.M2
Experienced Manager

JobFrame · DEM.GEN.M2

Data Engineering Management · General

M2 · M2 — Manager II · Individual contributor

Median pay · United States

$110,455

$86,772$140,602 · USD · annual · national base (function pricing in review)

Level position

M2 · 2 of 6 in track

Median pay

$110,455

$86,772–$140,602

Level

M2

M2 · 2 of 6 in track

Super-function

technology

Demand-heat

cool

10.1% growth

Summary

Manage one or more moderate-sized projects or a larger cross-functional team. Design and implement complex data pipelines and integrations with moderate oversight.

This level — M2 M2 — Manager II

Manages an established team or sub-function; owns planning and performance for the group.

Who does this work

Data Engineering Manager who wants to build efficient and secure data infrastructure that supports groundbreaking research and innovations in life sciences.

The problem this role solves

The overwhelming amount of diverse data formats and regulatory requirements complicating data management. Frustration over slow data access and processing that hampers research outcomes and decision-making. Every piece of data is crucial in advancing healthcare and scientific understanding, yet it remains underutilized due to inefficiencies in data handling.

The transformation

Streamlined data operations enhance research quality and speed. Robust infrastructure supports innovative breakthroughs in life sciences. A data-driven culture empowers teams to make informed decisions swiftly.

What's at risk

Inconsistent data quality leads to flawed research outcomes. Security breaches compromise sensitive patient and research data. Inefficient processes result in missed opportunities and delayed discoveries.

How the role wins

  • Evaluate current data infrastructure and identify areas for improvement.
  • Design and implement scalable ETL/ELT pipelines to ensure seamless data integration.
  • Establish data governance practices to enforce integrity and compliance.
  • Encourage continuous learning and collaboration among the data engineering team.
  • Utilize cutting-edge technologies and methodologies to optimize data processing.
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