Sr Data Engineer

Sr Data Engineer at Instrumentl — Remote

  • Company: Instrumentl
  • Location: Remote
  • Employment type: FULL_TIME
  • Salary: USD 150000–180000 / year
  • Posted: 2026-07-17

About this role

👋Hello, we’re Instrumentl.

We’re a mission-driven startup helping the nonprofit sector to drive impact, and we’re well on our way to becoming the #1 most-loved grant discovery and management tool. ****

About us:

Instrumentl is a hypergrowth YC-backed startup with over 4,000 nonprofit clients, from local homeless shelters to larger organizations like the San Diego Zoo and the University of Alaska. We are building the future of fundraising automation, helping nonprofits to discover, track, and manage grants efficiently through our SaaS platform.

Our charts are dramatically up-and-to-the-right 📈 — we’re cash flow positive and doubling year-over-year, with customers who love us (NPS is 65+ and Ellis PMF survey is 60+). Join us on this rocket ship to Mars! 

Senior Data Engineer  

We’re looking for a Senior Data Engineer to help scale and evolve our data platform, which is in its early stages. You’ll play a key role in shaping the architecture, improving reliability, and building the systems that power data across the company. This is a high-impact opportunity to bring structure and scalability to an existing foundation—ideal for someone who enjoys improving systems, making architectural decisions, and driving best practices.

You’ll partner closely with engineering, product, and business teams to design and implement scalable systems for data ingestion, storage, processing, and analytics. This role is ideal for someone who enjoys high ownership, thrives in ambiguity, and wants to have a lasting impact on foundational infrastructure.

What you’ll do:

Design and scale our data platform including pipelines, models, and orchestration frameworks

Develop scalable ETL/ELT pipelines for ingesting data from APIs, databases, and event streams

Define and implement systems for data ingestion, storage, processing, and transformation

Build and manage workflow orchestration using tools like Airflow

Build semantic layer as well as dashboards 

Establish best practices for data modeling, testing, and quality

Partner with stakeholders to shape data requirements and enable BI and analytics use cases

Optimize systems for performance, scalability, and cost from day one

Apply software engineering principles (testing, CI/CD, modular design) to data infrastructure

What you bring:

A min of 5+ years of software engineering experience with the last 2-3 years in data engineering, ideally including early-stage or 0→1 environments

Strong Python programming experience

Advanced proficiency in SQL

Proven experience building ETL/ELT pipelines end-to-end

Experience with orchestration tools like Airflow

Deep understanding of the data lifecycle: ingestion → storage → processing → transformation → serving

Experience with cloud platforms (AWS, GCP, or Azure)

Experience supporting BI tools (Looker, Tableau, etc.)

Familiarity with modern data warehouses (Snowflake, BigQuery, Redshift) 

Nice to have:

Experience with streaming pipelines (Kafka, Kinesis)

Exposure to ML/AI data pipelines

Familiarity with Ruby and Rails

Experience with data analytics and data science concepts

Experience working in startup environments

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