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RevOps Analytics Engineer

Job in New York, New York County, New York, 10261, USA
Listing for: Lean Layer
Full Time position
Listed on 2026-06-14
Job specializations:
  • IT/Tech
    Data Engineering, Data Analyst, Data Warehousing, Business Systems/ Tech Analyst
Salary/Wage Range or Industry Benchmark: 90000 - 120000 USD Yearly USD 90000.00 120000.00 YEAR
Job Description & How to Apply Below
Location: New York

Position Overview

Lean Layer is the #1 Rated Rev Ops Agency on G2, and we’re doubling our consulting team over the next year. Our reputation is built on excellent results, which means we need to keep hiring excellent people. We are looking for a Rev Ops Analytics Engineer with deep Revenue Operations expertise to own and maintain the data infrastructure that powers revenue analytics and reporting across our client environments.

This role focuses on data engineering and warehouse management
, ensuring reliable pipelines, scalable data models, and high-quality revenue data. The Rev Ops Analytics Engineer will work closely with Rev Ops consultants who define CRM and business requirements, and with data analysts who build dashboards and reporting.

You may be a fit for the Rev Ops Analytics Engineer role if you are strong in SQL, data modeling, and warehouse architecture
, and can understand the business context of revenue operations in order to build reliable and scalable data systems.

What We’re Looking For

The ideal candidate:

  • Enjoys building reliable data systems and solving complex data problems
  • Has strong technical data engineering skills
  • Understands how revenue teams use data for reporting and decision-making
  • Can translate business context into scalable data models
  • Is comfortable working across multiple systems and client environments
  • Is comfortable working directly with clients as needed
  • Thrives in collaborative, fast-paced environments
Key Responsibilities

Data Warehouse Ownership:

  • Design and maintain datasets and table structures
  • Manage warehouse performance, partitioning, clustering, and cost optimization
  • Maintain access controls and permissions
  • Structure warehouse schemas to support revenue analytics and reporting

Data Pipelines & Integrations:

  • Build and maintain ETL / ELT pipelines from revenue systems into the warehouse
  • Integrate data from systems such as Hub Spot, Salesforce, marketing and sales analytics platforms, sales engagement platforms, billing systems, and product analytics tools
  • Monitor pipeline health and resolve failures
  • Manage schema changes from upstream systems
  • Ensure reliable and timely data synchronization
  • Manage Git Hub repositories

Data Modeling for Revenue Analytics:

  • Design and maintain analytics-ready data models
  • Build models for accounts, contacts, opportunities, and pipeline data

BI & Analytics Support:

  • Maintain tables and models used by BI tools such as Looker
  • Optimize queries and support derived tables used in reporting
  • Ensure consistent metric definitions across reporting layers
  • Dashboard creation for data validation

Data Quality & Reliability:

  • Implement data validation and testing
  • Monitor pipeline health and data freshness
  • Identify and resolve data inconsistencies
  • Maintain documentation for warehouse models and data definitions
Required Qualifications
  • 3–5 years of experience in data engineering or analytics engineering
  • Strong SQL skills
  • Experience working with data warehouses (Big Query, Snowflake, Redshift, etc.)
  • Experience working with Salesforce or Hub Spot as a data source
  • Experience building and maintaining ETL / ELT pipelines
  • Experience designing analytics-ready data models
  • Familiarity with API-based integrations and data syncing
  • Python for data pipelines or automation
  • Reverse ETL or operational data workflows
  • dbt or similar transformation tools
  • Looker or similar BI platforms
  • Experience with Git Hub
Preferred Experience

Experience working with revenue or business systems and terminology such as:

  • Marketing Automation Platforms (MAP) like Hub Spot
  • Marketing analytics platforms
  • SaaS revenue metrics (ARR, ACV, TCV, MRR, etc.)
  • SaaS terminology (MQL, SQL, SQO, Deal/Opportunity, Lead/Contact, etc.)

Learn more about what it's like to work at Lean Layer here.

Visa Sponsorship: Please note that we are not currently able to offer U.S. visa sponsorship or transfer for this position.

For Canadian and Brazilian Residents: We also invite you to apply for this position but please note that at this time we can only hire those outside of the United States as full-time contractors. If you have any questions about this set up, please don't hesitate to reach out.

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