Senior ML Ops Engineer at Clutch | Torre
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Senior ML Ops Engineer

You'll define how AI is shipped and operated, owning production ML operations for a revolutionary FinTech platform.
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Freelance
Recurrent

USD75.4K - 100K/year

~COP150M - 200M/year

+ Equity

+ Bonuses

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Remote (for Brazil residents)
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Emma of Torre.ai
8 days ago

Requirements and responsibilities


About the RoleWe're hiring a Senior MLOps Engineer to be the data team's owner of production ML operations. You'll build the pipelines that take models from prototype to production, own the low-latency serving API behind our Next Best Action (NBA) engine, and stand up the monitoring, alerting, and reliability layer that keeps NBA models — and the LLM agents that consume them — healthy in production. This is a builder's role at a builder's moment: NBA is going live, the production ML platform is being shaped now, and you'll define how Clutch ships and operates AI for years to come. When there isn't active MLOps work, you'll also contribute to data engineering and machine learning work across the team.About the TeamThe Data team today is five people: one data scientist, two data engineers, one data analyst, and one product manager. We're small, ambitious, and shipping fast — ML models heading to production, a serving API being built, and AI agents in active development. You'll be the senior MLOps voice inside the team and the operational bridge to HAL, the platform team that runs Clutch's agent runtime. Expect tight feedback loops, real autonomy, and a team that values pragmatism over purity.What You'll DoWithin 3 months, you will:Take ownership of the ML serving API that serves NBA recommendations, partnering with the data engineer who's been building it, and harden it for low-latency production trafficBuild the first repeatable deployment pipeline: model artifact → versioned, deployable, rollback-able production service, with infrastructure defined as codeStand up the monitoring foundation: latency/error/drift dashboards, alerting, and audit/trace visibility across models and agentsBuild a working relationship with HAL and become the data team's go-to on ML serving and reliability decisionsWithin 6 months, you will:Be the primary owner (with data engineer support) of the ML serving platform and deployment pipelines for NBA and our ML modelsHave at least one production model and one production agent fully instrumented — versioning, monitoring, alerting, and multi-tenant gating in placeDefine the data team's playbook for shipping a new ML model to production, end-to-endDrive architectural decisions across APIs, processing pipelines, distributed compute, storage, search, observability, cloud infrastructure, and model-serving workflowsMentor the data engineers on MLOps patterns so they can confidently support and extend the systems you ownWithin 9 months, you will:Operate as the technical lead within the data team for NBA production ML operations — the person other teams come to when they want to understand how Clutch ships and runs ML reliablyHave measurably improved cost and latencyBe shaping the data team's roadmap for the next generation of ML infrastructure, in partnership with the PM and data scientistHelp us decide what to hire next as the team scalesWhat You'll BringRequired8+ years of experience in software, data, or ML engineering, with 4–5+ years running ML systems in production — you've taken models from prototype to production and own what happens after deployStrong Python — most of the work (serving API, pipelines, tooling, data pipelines) is in Python, and you're comfortable in production codebases, not just notebooks. Some TypeScript is involved for integration with our agent runtime — you don't need to be an expert, comfort with a second language is enoughCI/CD & deployment discipline. You build training and deploy pipelines that take a model artifact to a versioned, deployable, rollback-able production service, with automated testing and reproducible builds. You've implemented CI/CD for ML and built and maintained CI/CD pipelines (GitHub Actions, Bamboo, GitLab CI, or similar)Infrastructure as code. You manage cloud infrastructure (AWS Lambda, ECS) with Terraform or equivalent — no click-ops, everything reviewable and reproducibleMonitoring & observability discipline. You instrument serving systems for latency, error rates, drift, and cost; you read audit rows and distributed traces; you set up alerting so regressions are caught before users feel them. You treat monitoring as a first-class deliverable, not an afterthoughtReliability rigor. You design for failure: structured error handling, graceful degradation, rollback paths, and runbooks. You have a story about a production incident you handled and how you hardened the system afterwardExperience building and operating low-latency production APIs (FastAPI, BentoML, or equivalent), with opinions on serving, batching, and cachingComfortable in AWS (Lambda especially), containers (Docker), and GitHub-based workflowsSecurity & governance. You ensure security and governance across systems: IAM, KMS, access policies, and Secrets Manager/SSMDevOps / infrastructure knowledge, plus data manipulation and feature engineeringSolid understanding of ML concepts: models, pipelines, metrics, and supervised/unsupervised learningIntegrate and optimize AI/ML services with the company's other systemsYou use AI tooling actively in your engineering workflow — not as a novelty, but as a default. You'll be expected to demonstrate this during the technical evaluationDatabricks, PySparkDesiredProduction agent observability: reading audit rows, distributed traces, per-tool latency and error metricsCost and latency tradeoff intuition in production ML/agent systems — has measurably reduced per-inference or per-conversation cost or P95 latency on a live systemFamiliarity with an agent runtime framework (Vercel AI SDK, LangChain, LlamaIndex, or equivalent) from a serving/operations angleMulti-tenant agent gating experienceAgentic AI operations experience: Agent Ops, LLM OpsPrior SaaS and/or FinTech experienceWhat’s In It For You?Remote Flexibility: Enjoy the freedom of remote work from anywhere, balancing life and career seamlessly.Unforgettable Off-Sites: Twice a year, bond with colleagues in exciting destinations, fostering teamwork and fresh ideas.Paid Time Off and National Holidays: Enjoy 20 PTO days yearly and the National Holidays for relaxation and rejuvenation.Stock Options: Joining us means having a stake in our success, so you'll receive stock options as part of your compensation package.Home Office Setup: Create your ideal workspace with a dedicated budget for home office essentials.Work Trip Budget: Grow personally and professionally with a budget for work-related trips and co-working.About UsClutch is a revolutionary vertical SaaS company, proudly backed by Andreessen Horowitz (A16z), aimed at revolutionizing the way Credit Unions engage and change the lives of their members. As a champion of financial well-being, we address the urgent need for affordable lending solutions in an era where the average American grapples with over $155,000 in household debt. Unlike traditional financial institutions, Clutch develops software to turn Credit Unions into FinTech lenders and leverage their balance sheets to responsibly lend to over 130M Americans. Our mission extends beyond mere financial transactions; we strive to fundamentally enhance the way credit unions interact with their members. By integrating cutting-edge technologies and user-centric designs, we help credit unions provide seamless digital experiences that are on par with leading tech companies. This approach not only preserves but revitalizes the longstanding tradition of community and member-focused service inherent to credit unions.Please note: This position is offered on a contractor basis. Applicants must have the necessary documentation and authorization to work in the country where the job is located. Clutch cannot provide sponsorship or assist with obtaining work permits for this role.
Optionally, you can add more information later (benefits, pre-screening questions, etc.)
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