Omada HealthRemote · Remote, USAjust now
Mistral AIPosted today
Revenue Operations, Inference Lead at Mistral AI scores 30 out of 100 on AI centrality, which makes it AI Level 1 of 4 (Little AI) on this board. The level measures how much of the work is AI, not seniority.
AI in this role
About Mistral
Mistral provides full-stack AI solutions: from frontier models to developer tools, applications, and compute. We partner with enterprises tackling the hardest problems across high-stakes industries like finance, manufacturing, defense, healthcare, and the public sector, co-creating customized AI systems that they can run on their terms.
We are a dynamic, collaborative team passionate about AI and its potential to transform society. Our diverse workforce thrives in competitive environments and is committed to driving innovation. Our teams are distributed between Europe, North America, Asia and the Middle East. We are creative, low-ego and team-spirited.
About the role
Our Inference business sells compute we have to produce and hold. What we can sell is capped by GPU fleet capacity, and what we earn depends on the blended cost of the GPUs serving each workload — both of which move week to week.
This role sits between the people who run the fleet and the people who sell it. You will be the person who can answer, at any point in the quarter, three questions with real numbers behind them:
What do we have to sell?
What should we sell it for?
What do we make when we do?
You will own the commercial data, models, processes, and operating cadence behind these decisions, partnering closely with the Head of Digital Native Sales and serving as the commercial operating lead across Sales, Data Science, Inference Infrastructure, Finance, and Product.
This is a build role. Little of the commercial infrastructure you need exists today.
What you'll do
Capacity and demand
Build and own an end-to-end inference demand forecast combining pipeline, contracted commitments, and consumption trends into a forward-looking view of expected demand.
Combine capacity signals with pipeline demand to show what is available to sell and surface shortages, unused capacity, and supply-demand mismatches.
Translate customer requirements into structured inputs that Data Science and Inference Infrastructure can use to assess workload impact and feasibility, and help prioritize opportunities by revenue, margin, fit, timing, and strategic value.
Pricing and margin
Publish regular updates to GTM and Finance on available supply and recommended price, informed by market rates for provisioned throughput and per-token pricing.
Partner with Finance and Pricing to build rate cards, target prices, price floors, and discount guardrails GTM can act on.
Build and own margin sensitivity models showing how workload, utilization, contract structure, and discounting affect deal and portfolio economics.
Data infrastructure and GTM telemetry
Build the commercial telemetry for Inference: usage, consumption patterns, expansion, churn signals, and other leading indicators of revenue.
Connect capacity and usage data with pipeline, contracts, pricing, and revenue, and build self-serve reporting that helps GTM, Finance, and leadership make capacity, pricing, and prioritization decisions.
Partner with Finance on long-range planning for Inference, connecting demand forecasts to capacity and capex planning.
Core revenue operations
Own territory design, ICP definition, data-driven targeting, pipeline management, forecasting, and compensation plan design for the Inference and Digital Native segment.
Track competitive dynamics across inference providers and adjacent players, turning them into pricing and positioning input.
Cross-functional leadership
Drive alignment across Sales, Data Science, Inference Infrastructure, Finance, and Product on demand, capacity, pricing, and economics.
Ensure customer demand reaches technical teams early enough to inform capacity decisions, and build a structured feedback loop from requests, adoption patterns, blocked deals, and losses into Product and Engineering.
What you'll bring
Required skills and competencies
Experience in revenue operations, business operations, strategic finance, or investment banking in a business where cost of goods is real and variable — cloud infrastructure, compute, telco, logistics, or similar. Pure SaaS RevOps is not a fit on its own.
Strong SQL and comfort building your own data models: raw tables to dashboard, without waiting on a data team.
Demonstrated ability to build unit economics and margin models that other functions trust and use.
Enough technical fluency to hold a real conversation with infrastructure engineers about GPUs, utilization, serving efficiency, and capacity — or clear evidence you can get there fast.
Comfort operating with incomplete data, with a bias toward shipping a rough answer this week over a perfect one next quarter.
Strong cross-functional leadership and the ability to influence technical and commercial teams without direct authority.
Ideal additional skills and competencies
Familiarity with the inference market: provisioned throughput, per-token pricing, batch vs. real-time serving, and how the major providers price.
Experience with consumption- or usage-based revenue models.
Salesforce, BigQuery, and BI tooling (we use Metabase).
Having sat between a technical team and a commercial team before, trusted by both sides.
What We Offer
We offer a comprehensive benefits package designed to support your well-being, growth, and work-life balance. Benefits vary by country and may include healthcare coverage, parental leave, retirement plans, relocation support, wellness programs, meal and transportation allowances, and other location-specific perks.
For the most up-to-date details on benefits available in your location, please refer to our Benefits page.
Privacy Policy
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