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Join Stuut as a Data Engineer to build and own the data infrastructure that powers our intelligence layer for B2B accounts receivable.

Location
San Francisco
Compensation
Not disclosed
Level
mid
Type
full time

Posted by employer 1 week ago

First seen on Joblaze 1 week ago

Last verified on the company career page 1 day ago

Apply at Stuut → Save job Scanned from stuut.co

Skills & Technologies

Requirements

Experience
3+ years

Not disclosed in this posting: compensation, work arrangement, visa sponsorship.

Benefits

401k Match Equity/Stock Options Health Insurance Parental Leave

Joblaze summary

In this role, the Data Engineer at Stuut will be responsible for building and managing the data infrastructure that underpins the company's financial analytics platform. Key skills include proficiency in Python, SQL, and experience with ETL/ELT workflows, particularly using tools like dbt or Airflow. This position is ideal for someone with at least three years of hands-on experience who thrives in a startup environment and is eager to shape the data strategy from the ground up. As the first data hire, this engineer will play a crucial role in driving insights and supporting the company's growth in the B2B fintech space.

Joblaze insights

Quick facts

How much experience is required?
At least 3 years of relevant experience for this Data Engineer role.
What's the tech stack?
Joblaze extracted these technologies from the posting: Airflow, BigQuery, Python, SQL, Snowflake, dbt.
What seniority level is this role?
Stuut targets mid-level candidates for this position.
Is this full-time or contract?
Full-time for this Data Engineer role at Stuut.

From the original posting

Stuut is transforming accounts receivable for B2B companies—making collections smarter and faster for companies that have historically relied on manual processes that are labor intensive and costly. Our platform is gaining traction with finance teams across industrials, chemicals, and manufacturing sectors from Fortune 10 brands to scaling midmarkets. We're backed by top-tier investors including a16z, Khosla, Activant, 1984 Ventures, Page One and Microsoft.

The Role

To build the data foundation that powers Stuut's intelligence layer. You'll work closely with our product and engineering teams to transform raw financial data into actionable insights that help our customers get paid faster. This is a foundational role, you'll be our first data hire, which means you'll shape everything from our data architecture to how we think about analytics.

This is a high-impact role for someone who can think strategically about data infrastructure while rolling up their sleeves to build pipelines, models, and systems from scratch. You'll translate messy data into clean, reliable datasets that drive product decisions, customer insights, and business growth. If you've ever wanted to own the entire data stack at a fast-growing company, this is it.

What You’ll Do

  • Build and own our data infrastructure from the ground up — design pipelines that ingest, transform, and model data from customer ERPs, payment processors, and internal systems

  • Build the transformation and semantic layer that serves as the single source of metric truth across customer-facing analytics, internal reporting, and our AI/ML systems

  • Design the canonical data model that normalizes information across heterogeneous source systems, with quality tests and observability built in from day one

  • Build the event and signal pipelines that turn product interactions and outcomes into clean, labeled data — the foundation for analytics, ML, and intelligent product features

  • Partner with product, engineering, and applied ML to embed data quality, lineage, and observability into everything we ship

  • Implement DataOps best practices so our data — and the AI features built on top of it — stays timely, accurate, and trusted

  • Collaborate with leadership to define KPIs, build dashboards, and surface insights that drive strategic decisions

  • Scale our data platform as we grow from dozens to hundreds of customers, anticipating needs before they become bottlenecks

You Might Be a Fit If You…

  • Have 3+ years of hands-on experience building production data pipelines using Python

  • Know your way around SQL and modern cloud data warehouses; experience with Snowflake or BigQuery is a plus

  • Have deep experience implementing ETL/ELT workflows at scale using tools like dbt, Airflow, or similar — and have opinions on what good looks like

  • Have built or contributed to a semantic / metrics layer and care about metric consistency across surfaces

  • Understand data modeling fundamentals and can design canonical schemas that normalize messy, heterogeneous source data into something usable

  • Have worked with real-world data from SaaS APIs, ERPs, and third-party integrations — and have battle scars to show for it

  • Care deeply about data quality and observability — freshness, lineage, automated testing, and anomaly detection as first-class concerns

  • Have experience partnering with ML or applied AI teams on feature pipelines or supporting data infrastructure (bonus, not required)

  • Thrive in ambiguity and get energized by building something new rather than inheriting someone else's stack

  • Have experience (or strong interest) in fintech, B2B SaaS, or financial data — understanding AR/AP workflows is a big plus

Compensation

  • Top-of-market salary and equity package

  • Benefits (for U.S.-based full-time employees)

  • Medical, dental & vision insurance coverage for you

  • 401(k) & Match

  • Equity

  • Flexible PTO

  • Parental Leave

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