Analytics Engineer, Revenue

Gc Ai

India

On-site

INR 1,500,000 - 2,100,000

Full time

14 days+
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Job summary

GC AI is seeking an Analytics Engineer to join Revenue Operations and build the intelligence layer that turns GC AI's data into decisions. Reporting to Emma Heist, Head of Revenue Operations, you will be GC AI's first dedicated analytics hire, working closely with Sales, Marketing, Customer Success, Finance, Product, and leadership to define how the company measures itself and where it focuses.

You won't be building the warehouse from scratch (our Data Engineering team owns that), but you will

Qualifications

  • 5+ years in data engineering, business intelligence, or analytics engineering roles in B2B SaaS.
  • Hands-on experience building data infrastructure from early-stage or greenfield environments.
  • Experience building analytical data models, semantic layers, or transformation layers using tools like dbt, Looker modeling, or similar frameworks.
  • Strong proficiency in SQL, with experience modeling data in cloud warehouses such as BigQuery or Snowflake.
  • Working knowledge of Python for scripting and automation.
  • Track record building dashboards and reporting in BI tools (e.g., Looker, Tableau, or Sigma) that business teams rely on daily.

Responsibilities

  • Own the Analytical Modeling Layer: Design and maintain dimensional models (revenue, pipeline, product usage, retention, customer lifecycle).
  • Create the Intelligence Layer: Build dashboards, reports, and self-serve analytics for real-time visibility into key metrics.
  • Drive GTM Analytics: Develop analytical frameworks for pipeline generation, forecasting, health scoring, retention, and attribution.
  • Build Analytics Workflows: Implement lightweight data transformations and quality checks for analytics use cases.
  • Enable Data-Driven Culture: Translate business questions into analytical frameworks and make data accessible to non-technical users.
  • Scale the Function: Establish standards, documentation, and best practices to grow GC AI's analytics capabilities.

Skills

SQL
Data modeling
Python
BI tooling
Dashboards
KPI frameworks

Tools

dbt
Looker
BigQuery
Snowflake
Tableau
Sigma

Job description

About The Role

GC AI https://gc.ai/ is the fastest-growing and most trusted legal AI platform for in-house legal teams. We're building the future of legal work, and we're doing it fast. You'll join at a pivotal moment when decisions matter, impact is immediate, and the runway to shape your career is wide open. Were a high-performing team where you'll have real ownership and influence from day one.

More than 1,800 companies use GC AI to drive their business forward, including 150+ public companies, 25+ unicorns, and brands such as News Corp, Miro, Bass Pro Shops, Snyk, Skims, Liquid Death, Vercel, Zscaler, and TIME.

We've 10x'd revenue in 12 months, raised a $60 million Series B ($555 million valuation) https://gc.ai/blog/gc-ai-raises-60-million-series-b-to-give-every-company-a-legal-advantage, and are growing faster than ever. We are backed by incredible investors, including Scale Venture Partners, Northzone, Sound Ventures, and Guillermo Rauch, CEO of Vercel.

If you thrive when the stakes are high and the path isn't paved, you'll love it here. Our six guiding principles are: 1% better every day, customer obsession, ship today, find a way, care deeply, and own it completely. Come shape the future of legal work with us.

We are seeking an Analytics Engineer to join Revenue Operations and build the intelligence layer that turns GC AI's data into decisions. Reporting to Emma Heist, Head of Revenue Operations, you will be GC AI's first dedicated analytics hire, working closely with Sales, Marketing, Customer Success, Finance, Product, and leadership to define how the company measures itself and where it focuses.

You won't be building the warehouse from scratch (our Data Engineering team owns that), but you will own everything that sits on top of it: the data models that reflect how the business actually works, the dashboards and reporting that teams rely on daily, the KPI frameworks that drive GTM strategy, and the self-serve analytics layer that lets anyone answer their own questions. You will also partner closely with Data Engineering to ensure the warehouse schema and pipeline design support the analytical use cases the business needs.

We're looking for someone who combines strong technical chops in SQL, data modeling, and BI tooling with genuine curiosity about business operations and a knack for translating messy business questions into clean analytical frameworks.

What You'll Do
  • Own the Analytical Modeling Layer: Design and maintain dimensional models (revenue, pipeline, product usage, retention, customer lifecycle) that make warehouse data usable for business teams. Partner with Data Engineering on schema design to ensure the warehouse serves analytical use cases.
  • Create the Intelligence Layer: Build dashboards, reports, and self-serve analytics that give Sales, Marketing, Customer Success, Product, Finance, and leadership real-time visibility into the metrics that matter. Define KPIs, build attribution models, and create the single source of truth for company performance.
  • Drive GTM Analytics: Own the analytical frameworks behind pipeline generation, sales forecasting, customer health scoring, retention analysis, and marketing attribution. Be the person who can tell the exec team not just what happened, but why, and what to do about it.
  • Build Analytics Workflows: Build lightweight transformation and enrichment pipelines specific to analytics workflows (e.g., attribution logic, cohort tagging, KPI rollups) using dbt or similar tools. Implement data quality checks and governance practices to keep analytics accurate and trustworthy as we scale.
  • Enable Data-Driven Culture: Partner with stakeholders across Revenue Operations, Finance, Product, and the exec team to understand their data needs, translate business questions into analytical frameworks, and make data accessible to non-technical users. You'll be the go-to person when someone asks, "Where does this number come from".
  • Scale the Function: Establish standards, documentation, and best practices to enable GC AI's analytics capabilities to grow. As the first analytics hire, you'll shape the roadmap for the analytics function's evolution and help recruit the next members.
What You've Done
  • 5+ years in data engineering, business intelligence, or analytics engineering roles in B2B SaaS, with hands-on experience building data infrastructure from early-stage or greenfield environments.
  • Experience building and maintaining analytical data models, semantic layers, or transformation layers using tools like dbt, Looker modeling, or similar frameworks.
  • Strong proficiency in SQL, with experience modeling data in cloud warehouses such as BigQuery or Snowflake. Working knowledge of Python for scripting and automation.
  • Track record building dashboards and reporting in BI tools (e.g., Looker, Tableau, or Sigma) that business teams rely on daily.
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