Senior Analytics Engineer, Finance

Harvey

$155K — $235K *
Finance & Insurance
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of experience in Analytics Engineering, Data Engineering, or Data Science.
  • Deep expertise in SQL, dbt, Python, and Snowflake.
  • Experience with BI tools like Looker or Omni.
  • Proficient in defining financial and operational metrics and troubleshooting data inconsistencies.
  • Strong familiarity with version control (GitHub) and CI/CD processes.
  • Ability to communicate effectively and build strong cross-functional relationships.
  • Analytical mindset with a balance of big-picture thinking and attention to detail.

Responsibilities

  • Design and build scalable data models and pipelines using dbt.
  • Define and implement a semantic layer for financial metrics standardization.
  • Collaborate with Product, Finance, and leadership on intuitive dashboards.
  • Establish data modeling standards and best practices.
  • Lead data governance initiatives for quality and access control.
  • Structure financial definitions for advanced analytics capabilities.

Benefits

  • Opportunity to work closely with cross-functional teams and leadership.
  • Chance to influence and build the financial data foundation.
  • Access to modern BI tools and technology stack.
  • Role in shaping data governance and modeling standards.
  • Dynamic work environment with significant impact on company decision-making.
Full Job Description
Role Overview

We're looking for a versatile Senior Analytics Engineer to partner closely with our Finance team in building the financial data foundation that drives decision-making at Harvey. With product-market fit already proven and demand surging across diverse customer segments, you'll design clean, reliable pipelines and semantic data models that turn source data into usable insights. As an Analytics Engineer on our team, you'll help evolve our data stack, champion best practices in testing and documentation, and collaborate closely with product, finance, and leadership to ensure every team can answer its own questions with confidence. If you combine engineering rigor with a love of storytelling through data we'd love to meet you.

What You'll Do
  • Design and build scalable data models and pipelines using dbt to transform raw data into clean, reliable assets that power company-wide financial analytics and decision-making.
  • Define and implement a robust semantic layer (e.g. LookML/Omni/Other) that standardizes financial and operating metrics, including revenue, retention, customer growth, usage, margin, and forecast inputs.
  • Partner cross-functionally with Product, Finance, and the Exec Team to deliver intuitive, consistent dashboards and analytical tools that surface business health metrics (ARR, NRR).
  • Establish and champion data modeling standards and best practices, guiding the organization in how to model data for accuracy, performance, usability, and long-term maintainability.
  • Lead data governance initiatives, ensuring high standards of data quality, consistency, documentation, and access control across the analytics ecosystem.
  • Structure financial metric definitions, business logic, and accounting context in ways that can support AI-assisted reporting, natural language analytics, and automated anomaly detection.


What You Have
  • 5+ years of experience in Analytics Engineering, Data Engineering, Data Science, or similar field.
  • Deep expertise in SQL, dbt, Python, Snowflake.
  • Experience with modern BI tools like (Looker/Omni, or similar).
  • Skilled at defining core financial and operating metrics, uncovering insights, and resolving data inconsistencies across complex systems.
  • Strong familiarity with version control (GitHub), CI/CD, and modern development workflows.
  • Bias for action - you prefer launching usable, iterative data models that deliver immediate value over waiting for perfect solutions.
  • Strong communicator who can build trusted partnerships across Finance, GTM, Product, and Exec stakeholders.
  • Comfortable working through ambiguity in fast-moving, cross-functional environments.
  • Balances big-picture thinking with precision in execution - knowing when to sweat the details and when to move quickly.
  • Experience modeling financial, billing, subscription, CRM, or usage-based revenue data.
  • Strong understanding of business metrics such as ARR, MRR, churn, retention, expansion, bookings, billings, and revenue recognition.
Bonus
  • Early employee at a hyper-growth startup
  • Experience with or knowledge of AI and LLMs
  • Data Engineering Experience
  • Experience managing data warehouse (preferably Snowflake)
  • Experience at world-class enterprise orgs (ex: Brex, Ramp, Stripe, Palantir)


Compensation

$155,000 - $235,000 USD

#LI-SB1

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