Machine Learning Engineer
$210k - $224k per yearUrban Ridge Supplies
You'll build the ML behind Firecrawl: the models and the systems that serve them. That starts with search: training and shipping the ranking and relevance models for one of our fastest-growing products, then extending that work across extraction quality and LLM-driven features. You'll also own how we measure: A/B testing launches and building the experimentation frameworks the whole team ships against. If you ship models into production, whether your title says ML engineer or data scientist, this is for you.
Salary Range: $250,000–$290,000 USD/year (SF) / $210,000–$224,000 CAD/year (Toronto) Equity Range: Competitive equity. Details shared during the process. Location: San Francisco, CA (SF HQ) or Toronto, ON (Toronto Hub). On-site, five days a week. Job Type: Full-Time Experience: 3+ years building ML or data-heavy systems in production Work Authorization: Must be authorized to work in the United States or Canada. We're not able to sponsor US visas right now. For Canada, we'll consider sponsorship on a case-by-case basis through our Toronto Hub. About Firecrawl Firecrawl is the easiest way to turn the web into data AI agents can use. One API call converts any URL into clean, LLM-ready markdown or structured data. It's the boring-hard problem everyone building with LLMs eventually hits, solved. In September 2026 we raised a $75M Series B led by Smash Capital, and we're spending it building the largest repository of knowledge in the world. We hit 8 figures in ARR in year one and more than doubled it in year two. We have 183k+ GitHub stars, putting us in the top 50 repositories of all time, and developers, agents, and category-defining AI companies build on us every day. Growth like this is rare, and we're just getting started. We're a small team punching far above our weight, working out of SF HQ and our new Toronto Hub. Everyone here owns a real piece of the product and company, end to end, and runs it themselves. No hiding behind process or headcount. This is a place for people who want to work at the frontier: an AI company building the infrastructure other AI companies run on, not one bolting AI onto an existing product. We move fast, go deep, and are building the tools superintelligence will rely on to gather data from the web. That library is called Alexandria, and it starts now. What You'll Do- Improve ranking and relevance for Firecrawl Search, from feature engineering to model training to production
- Build and tune models for learning-to-rank, query understanding, and LLM-driven retrieval
- Extend ML across Firecrawl's products: extraction quality, content classification, and evaluation of LLM-driven features
- Mine query logs and behavioral data at scale to find where our products win and where they fail
- Build the data pipelines that turn web-scale crawl and query data into training data and features
- Work hands-on with platform, search, and cloud DevOps engineers to get models running fast and cheap in production
- Design our testing strategy: the A/B testing frameworks and offline evaluation the team ships against
- Partner on product launches across Firecrawl: define success metrics, run the experiments, and make the ship/no-ship call on evidence
- Report on how releases perform post-launch and turn the findings into the next iteration
- You've shipped ML models into production systems and owned them after launch: deploying, monitoring, and retraining them, not handing them off
- You have real ranking or relevance-modeling experience: learning-to-rank, recommendations, or search quality
- You're comfortable in large, data-heavy systems: query logs, pipelines, and datasets that don't fit in memory
- You write production-quality code (Python at minimum) and can work inside a real backend codebase
- You're rigorous about measurement. You've designed and analyzed A/B tests and know when a lift is real
- You can communicate results clearly to the team: what shipped, what moved, and what to do next
- MLOps experience: MLflow, experiment tracking, model registries, or feature stores. Kubernetes is a plus
- Experience building or standardizing an experimentation framework at a previous company
- Experience with embedding models, vector retrieval, or LLM-based relevance evaluation
- Experience evaluating LLM outputs at scale: quality scoring, structured-extraction accuracy, or agent behavior
- Spark or similar large-scale data processing experience
- A pure statistician or analyst who needs an engineering team to productionize their work
- Someone who wants to specialize narrowly and hand off everything else
- Someone who optimizes for process over shipping
- Salary that makes sense: $250,000–$290,000 USD/year (SF) / $210,000–$224,000 CAD/year (Toronto), based on impact, not tenure
- Own a piece: Gain competitive equity in what you're helping build
- Generous PTO: 15 days mandatory, anything after 24 days, just ask (holidays excluded). Take the time you need to recharge
- Parental leave: 12 weeks fully paid, for all parents
- Wellness stipend: $100 USD/month for the gym, therapy, massages, or whatever keeps you human
- Learning & Development: Expense up to $1,000 USD/year toward anything that helps you grow professionally
- Team offsites: A change of scenery, minus the trust falls
- Sabbatical: 3 paid months off after 4 years, do something fun and new
- Full coverage, no red tape: Medical, dental, and vision (100% for employees, 50% for partner and kids). No weird loopholes, just care that works
- Life & Disability insurance: Employer-paid basic life and AD&D, short-term disability, and long-term disability. Coverage for life's curveballs
- Virtual care and a health guide: Teladoc for the couch doctor visit, plus Rightway to answer coverage questions and fight billing errors for you
- Mental health: Talkspace, therapy and psychiatry on your schedule
- Fertility and family building: Carrot, covering you and your partner
- EAP: Free confidential counseling, legal and financial consults, and online will prep through Guardian
- 401(k) plan: Retirement might be a ways off, but future-you will thank you
- Pre-tax benefits: HSA, FSA, and commuter benefits to help your wallet out a bit
- Supplemental options: Extra life and AD&D, accident, critical illness, hospital indemnity, plus pet, legal, and identity protection through MetLife
- Full coverage, no red tape: Extended health, dental, and vision through Manulife (Diamond, the top tier), 100% employer-paid for you, your partner, and your kids
- Life & Disability insurance: Employer-paid life, AD&D, short-term disability, and long-term disability. Coverage for life's curveballs
- Virtual care: Dialogue Premium, so you can see a doctor or nurse from your couch, any hour
- Mental health: Talkspace Elite, therapy and psychiatry on your schedule
- Fertility and family building: Carrot, covering you and your partner
- Retirement: Group RRSP through Wealthsimple, so future-you can thank you
- SF HQ perks: Snacks, drinks, team lunches, intense ping pong, and peak startup energy
- E-Bike transportation: A loaner electric bike to get you around the city, on us
- Toronto Hub perks: Snacks, drinks, team lunches, glass-walled views down University Avenue, and a home base steps from Union Station
- Transit, covered: A PRESTO card loaded for GO Transit, subway, and streetcar, plus station parking if you drive to the train. Winter-proof, on us
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