Salary
≈ $146k – $284k per year (Estimated)
Location
In office (New York)
Seniority
Senior
Employment
Full-Time
Overview
Company
Impact
Profile match
Alliance (originally founded as DeFi Alliance and later rebranded as Alliance DAO) is a leading accelerator and founder community dedicated to early-stage startups building in crypto, Web3, and AI. Founded in 2020 by Imran Khan, Qiao Wang, and Jacob Franek, Alliance serves as an operational launching pad for early-stage technical teams.
Senior ML Eng
Location: NYC (onsite only - not remote)
Alliance is the leading accelerator for crypto & AI founders. Since 2020 we’ve backed 300+ startups (Rain, Pump, Synthetix, Pendle, and many more), now collectively valued at $15B+.
We’re hiring a Machine Learning Engineer to join our in-house engineering team. You’ll report directly to Carter (CTO) and will be responsible for owning features from the requirements definition stage to production.
What You’ll Do
- Own applied ML end-to-end: turn a loosely defined problem into a dataset, an experiment, a model, and a production system without relying on a PM or a large engineering team.
- Build and operate production Python systems for data collection, enrichment, feature extraction, scoring, evaluation, and AI-assisted research.
- Develop models people can trust: define labels and features, build evaluation sets and backtests, catch leakage and bad source data, compare approaches, and know when a simpler model is the right answer.
- Move work from the model lab into production: own artifacts, feature and prompt compatibility, APIs, background jobs, observability, failure handling, and releases.
- Improve our LLM systems including structured extraction, research agents, prompt and model evaluation, and the guardrails needed to use untrusted external data safely.
- Work directly with stakeholders to decide what is worth building, explain model behavior and tradeoffs clearly, and iterate based on how the system is actually used.
What we’re looking for
- Senior, self-directed ML engineer who can take an ambiguous problem from first experiment through a reliable production release.
- Deep experience with Python and applied machine learning; comfortable moving between data exploration, training code, application code, APIs, and production debugging.
- Strong modeling judgment: problem and label definition, feature design, evaluation, backtesting, leakage, missing data, calibration, interpretability, and model selection.
- Enough software and data engineering depth to ship your own work: build pipelines and services, integrate external APIs, manage model artifacts and schemas, and maintain production workflows without heavy engineering support.
- Practical experience with LLM systems: structured outputs, model and prompt evaluation, observability, retries, cost and latency tradeoffs, and safe handling of untrusted inputs.
- Clear communicator with good product judgment who can work directly with non-technical stakeholders and turn model output into a useful decision or operating tool.
- Extremely high-agency, entrepreneurial, self-driven.
- NYC-based or willing to relocate (non-negotiable).
Examples of strong qualifications (good to have but not required)
- Shipped ML products that people actually use, with evidence of owning the path from raw data and experimentation through deployment, monitoring, and iteration.
- Strong public work: a standout GitHub, useful open-source contributions, published research, technical writing, or unusually good independent experiments.
- Experience building prediction, ranking, classification, recommendation, or anomaly-detection systems on messy real-world data.
- Experience building LLM evaluation systems, structured extraction pipelines, research agents, or other production AI workflows.
- Founder, early ML hire, or senior individual contributor at a fast-moving startup, especially where you operated without a dedicated ML platform or large engineering team.
- Clear signals of exceptional technical or quantitative ability: strong research, competition results, Math/Physics Olympiad performance, or a top technical academic background.
Why NOT join us
- Not willing to get hands dirty: doesn’t matter how important you were in past organizations; at Alliance we’re all builders, not managers (even though many of us were managers in past lives).
- Prioritizing work/life balance: this role demands focus, hunger, and a career-defining level of commitment. You must be locked in.
- Low agency: if you need someone else to set your priorities or keep you on track, you will fail.
- You can’t relocate to NYC. This is non-negotiable: our founders are here, and so are we.
Why join us
- Work with the most ambitious founders in crypto and AI. Learn firsthand from hundreds of startups succeeding - or failing.
- Join a small, high-trust, high-performance team with outsized impact. We’re ex-Meta, WhatsApp, Coinbase, YC, and have collectively founded multiple venture-backed startups.
- We’re backed by S-tier investors including Initialized Capital, Founders Fund, Multicoin, and Dragonfly, along with angels such as Balaji Srinivasan (ex-Coinbase CTO), Kevin Weil (CPO at OpenAI), Kevin Lin (Twitch co-founder), and Jeremy Allaire (Circle CEO), among many others.
- Direct ownership and visibility: your work shapes how the next generation of founders discovers Alliance.
- Career accelerator: this role sets you up, experience- and network-wise, for any high-impact path in crypto/AI - at startups, venture firms, or your own company.
- Alliance startups are reinventing industries - from media to payments - and improving the lives of everyday people. You’ll have a front-row seat as they change the world.
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