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Salary
$170k – $200k per year
Location
In office (New York)
Seniority
Senior · 5+ years exp
Employment
Full-Time
Overview
Company
Impact
Profile match
Rogo is an artificial intelligence company headquartered in New York City and founded in 2021. The company builds an AI analyst for financial services that reads filings, transcripts, research, and internal deal documents, then drafts the models, comparables, and pitch materials bankers assemble by hand. It sells to investment banks, private equity firms, and asset managers that need the work done inside their own data perimeter.

Why Rogo

Our mission is to transform global finance by empowering professionals at the world's top investment banks, private equity funds, and investment firms with AI that delivers unparalleled speed, accuracy, and insight. We're not just improving financial workflows; we're redefining them.

This is a unique opportunity to join a generational company driving transformation in one of the most important industries in the world. With a rapidly growing, global client base, proven product-market fit, and backing from world-class investors, we are scaling quickly and defining a new category of enterprise AI.

Our team is sharp, motivated, and deeply committed to Rogo’s mission. We take ownership of complex problems and stay relentlessly focused on our users. If you thrive in a fast-paced environment, demand excellence, and want to help build the future of finance, we invite you to join us.

The Role

We're hiring a GTM Systems Engineer to build and own the systems layer behind Rogo's revenue engine. This is not a conventional Salesforce Admin seat. You will need those skills, deeply, but the job is to question how companies use GTM technology today and then build what replaces it.

You will own Salesforce end to end alongside the surrounding stack: Gong, Clay, Apollo, Lusha, Nooks, Default, LinkedIn Sales Navigator, DocuSign, and whatever we adopt next. You will own quote-to-cash and CPQ tooling, the contract and entitlement layer, and the customer lifecycle that runs on top of them.

Most importantly, you will build with AI as a first-class tool, not a side project. Health and scoring models, MEDDPICC scorers, account research agents, enrichment and routing agents, MCP servers that let LLMs read and write our GTM data safely. You will use Claude Code and similar tooling to build, test, and deploy real Apex and Lightning Web Components, with the engineering discipline to do it properly.

You'll report into RevOps leadership and work directly with Sales, Sales Development, Customer Success, Deal Desk, Finance, and Engineering. This is a builder-operator role with wide latitude: you help pick the highest-leverage problem, ship it, and own how it runs.

What You Will Own

Salesforce and the GTM Tech Stack

  • Own Salesforce end to end: data model, schema, Flows, validation rules, permissions, record pages, DevOps hygiene, and platform reliability across the full revenue lifecycle.

  • Build and maintain Salesforce customizations in Apex, SOQL, Flow, and Lightning Web Components, with tests, deployment discipline, and documentation that survive you.

  • Own administration and integration of the surrounding stack: Gong, Clay, Apollo, Lusha, Nooks, Default, LinkedIn Sales Navigator, DocuSign, and new tools as we adopt them.

  • Architect integrations between Salesforce and the rest of the stack, and own the API, OAuth, and access patterns that make them reliable.

  • Own the full user access lifecycle across GTM systems: provisioning, role and permission changes, and deprovisioning, with access designed by audience rather than one blanket profile.

  • Evaluate, pilot, and consolidate tooling. Be opinionated about what earns a seat in the stack and what should be retired.

Quote-to-Cash, CPQ, and Customer Lifecycle

  • Own CPQ and quoting controls, including ramp and multi-year structures, approval paths, and the guardrails Deal Desk relies on.

  • Own the contract and entitlement layer: order form and contract extraction, activated contract records, seat and license rollups, billing structure, and the exception reporting that keeps them honest.

  • Own renewal, expansion, and churn mechanics in the system: how renewal opportunities are generated, deduplicated, forecast, and reconciled against contract cycles.

  • Design the customer lifecycle in-system so that pipeline, deployment, health, and renewal all read from the same source of truth.

AI and Agentic Systems

  • Design, build, and ship AI capabilities into the GTM motion: account health and scoring models, MEDDPICC scorers and deal inspection, account research agents, enrichment, routing, and call-signal extraction.

  • Build and extend MCP servers and agent tooling so LLMs can read and write GTM data safely, with the field definitions, permissions, and API structure that agent consumption actually requires.

  • Stand up evals, monitoring, confidence scoring, and guardrails so every AI capability is observable, reversible, explainable, and measured against a business number rather than uptime.

  • Exercise judgment about where AI genuinely helps versus where it creates risk, and where a human stays in the loop.

  • Track the AI and automation landscape and bring the best of it into how Rogo's GTM org operates.

Data Quality, Reporting, and Operating Controls

  • Treat data quality as a production control, not a cleanup project: dedupe, segmentation, domain normalization, and explicit override fields with visible thresholds and reasons.

  • Design for reporting at capture. Owners, reason codes, confidence tiers, evidence fields, and dedupe keys belong in the schema, not in a downstream join.

  • Run population-scale backfills properly: audit file plus load file, segmented into ready, review, and skip, validated before anything touches production.

  • Serve as the primary escalation point for GTM system issues, with a bias toward fixing the root cause in the system rather than the symptom in the record.

What We Are Looking For

We are optimizing for real GTM systems experience over years-on-paper. Apex, CPQ, and applied AI are all areas where the bar is shifting fast and few candidates have deep, traditional tenure in all of them; what we actually need is someone who has been the systems owner on a revenue team long enough to have broken things, fixed them, and built the guardrails so they didn't break again.

  • 5+ years owning GTM systems in a revenue, sales, or RevOps organization, the large majority of it hands-on administering Salesforce as a system of record, not just using it.

  • Within that, meaningful, recent time owning other GTM tooling beyond Salesforce itself: Gong, Clay, Apollo, Lusha, Nooks, Default, LinkedIn Sales Navigator, DocuSign, or close equivalents, including the integration and access layer between them.

  • Demonstrated experience building out full GTM tech stacks and owning many parts of them, not just one system in isolation.

  • Hands-on experience with CPQ tooling, quote-to-cash, and customer lifecycle design, including quoting controls, contracts, entitlements, and renewals. We don't expect deep CPQ platform-engineering tenure; we expect you've owned it in production and understand its logic well enough to configure and troubleshoot it.

  • Recent, concrete experience leveraging AI and LLMs in GTM systems: health and scoring models, MEDDPICC scorers, account research agents, or comparable production work. This is a newer discipline, so we care far more about depth on one or two real, shipped examples than about breadth of buzzwords. You should be able to walk through what you built, how it was evaluated, and what it changed.

  • Working familiarity with Apex, SOQL, and Lightning Web Components, not necessarily years as a professional developer, but enough fluency to read, reason about, and validate code so you can use AI coding tools like Claude Code to build, test, and deploy it properly and safely.

  • Comfort with SQL and enough Python or scripting to build and debug your own pipelines, integrations, and backfills.

  • Ability to take a vague business problem, scope it into a technical spec, and execute it without a roadmap handed to you.

  • Strong written communication. You can explain what a system does, why it was designed that way, and what the trade-offs were, to both engineers and GTM leadership.

Nice to Have

  • Experience building or extending MCP servers, agent frameworks, or LLM orchestration tooling.

  • Production experience with iPaaS or automation platforms such as Workato, n8n, Tray, or Zapier.

  • Experience with the modern data layer: Snowflake, dbt, Fivetran, Hightouch, or reverse ETL into GTM systems.

  • Salesforce certifications (Administrator, Advanced Administrator, Platform Developer I).

  • Experience in a compliance-sensitive environment such as SOC 2, SOX, or IPO readiness.

  • Experience at a company that scaled significantly during your tenure.

Who You Are

  • You thrive in fast-paced environments. You are high-intensity and care a lot about what you do, and you're ecstatic to work at a startup.

  • You are ambitious. You have fun solving problems that others think are impossible.

  • You are curious. You find joy in learning about AI, technology, and finance.

  • You are an owner. You are autonomous, self-directed, and comfortable working with ambiguity.

  • You are collaborative, organized, thoughtful, and kind.

Why Join Rogo?

  • Up and to the right: Rogo has strong product adoption with the world's leading financial institutions, and we are still early. The upside is enormous.

  • Extraordinary team: we take talent density seriously. You'll do the best work of your career alongside some of the sharpest people in AI and finance.

  • A one-of-one problem: bringing AI to the core of how Wall Street works is one of the most ambitious, technically demanding, and consequential problems today. There is nowhere else you can work on it at this scale.

  • Real ownership: You'll own real surface area and watch the world's most sophisticated users rely on your work.

  • Always at the frontier: we work at the edge of what the best models can do and turn it into products people trust. If you're obsessed with AI, this is where it's happening.

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