Senior Machine Learning Engineer

Alt

United States

On-site

USD 230,000 - 250,000

Full time

11 hours ago
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Benefits offered by this job

Remote-first
WeWork access
401(k)
Equity
PTO
Parental leave
Wellness stipend
DoorDash membership

Job summary

Alt is building real-time, scalable pricing models for a fast-growing collectibles marketplace in the United States. You will own the full ML lifecycle—from feature generation and training to deployment, serving, and drift monitoring.

You’ll reduce cost while boosting accuracy on high-value assets, collaborating with expert pricers and data leads. The role requires extensive experience shipping production ML/AI models, strong Python/SQL skills, and proficiency with AWS-based pipelines and MLflow

Qualifications

  • 7+ years engineering experience with 5+ years shipping production ML/AI models.
  • Proficiency in Production-grade Python and SQL with feature-engineering pipelines.
  • Experience with gradient-boosted/ensembling models and model validation.

Responsibilities

  • Own full ML lifecycle from feature generation to deployment and monitoring.
  • Improve pricing models and underwriting workflows to reduce cost and increase accuracy.
  • Build production-grade data pipelines and model-serving infrastructure on AWS.

Skills

Python
SQL
Production ML/AI models
Model monitoring
AWS
CI/CD
IaC
Feature engineering
MLflow
Experiment tracking

Tools

MLflow
AWS

Job description

Alt is unlocking the value of alternative assets, starting with the $5 B trading-card market. We let collectors buy, sell, vault, and finance their cards in one place and we are backed by leaders at Stripe, Coinbase, Seven Seven Six, and pro athletes like Tom Brady and Giannis Antetokounmpo. Our next frontier is real-time pricing at scale—the Alt Value that powers every trade, loan, and product on the platform.

The Role

Every buyer, seller, and lender on Alt is acting on a number our models produced. Alt Value prices the card. The underwriting model sizes the advance. Those two systems are the difference between a marketplace and a handshake, and they are the closest thing we have to a moat. We've proven model-driven pricing works. This role takes it from working to excellent: more coverage, better accuracy, lower cost to run, faster to refresh. You'll own the full lifecycle — feature generation, training, validation, deployment, serving, and the monitoring that catches drift before a customer does. This is not a research seat. The models exist. What they need is someone who treats production as the deliverable.

The metric you own: Model-Based Pricing Coverage

Supporting KPIs: pricing accuracy (% error), pricing freshness (end-to-end orchestration time), and underwriting performance (advance disbursement rate against target default rate).

What You’ll Own
  • Leaner, sharper pricing. Cut infrastructure cost meaningfully while improving accuracy, especially on high-value assets where being wrong is expensive.
  • Underwriting from good to great. Iterate the model to maximize cash advance disbursements without breaching risk thresholds or default targets.
  • The full ML lifecycle. Feature generation and training through deployment and monitoring. No handoff, no throwing it over a wall.
  • The production path. The models' AWS infrastructure and the pricing APIs themselves — capacity planning, autoscaling, latency, and diagnosing the memory and timeout failures that only show up at scale.
  • Experiments that settle arguments. Design and run backtests to find and validate features that actually move predictive power and coverage.
  • Domain depth. Work directly with our Expert Pricers until your model changes reflect real market judgment, not just what the data allows.
What Great Looks Like (6 Months)
  • Shipped leaner, more accurate pricing models. Infrastructure cost is meaningfully down and accuracy is up, especially on high-value assets.
  • Moved underwriting from good to great. More disbursement, no breach of risk thresholds.
  • Earned trust with Expert Pricers. You're their go-to partner, and they can tell your changes reflect the market.
  • Hardened the production path. The pricing APIs are faster, more observable, and easier to reason about, with drift monitoring in place before it reaches customers.
How You'll Use AI Here
  • Build an agent that reads a batch of new comps and flags the ones our model is likely to price badly, before a pricer has to catch it by hand
  • Use foundation models for feature extraction from unstructured card and listing data — condition language, provenance notes, auction descriptions — and get real lift out of it
  • Stand up a backtest harness you can talk to, so evaluating a feature idea is a conversation rather than a two-day branch
  • Put an MCP server over the model registry and prediction logs so 'why did this card price move' is a question, not a query
  • Use Claude Code or Cursor as the default way you work through a refactor or an infra migration, not as autocomplete
What You Bring
  • 7+ years engineering, with 5+ years building and shipping production ML/AI models
  • Production-grade Python and SQL, including custom feature-engineering pipelines — not just off-the-shelf scikit-learn. Time-decay weighting, leakage-safe k-fold cross-validation, cascading fallback and imputation logic
  • Gradient-boosted or ensemble estimators trained and validated against strict accuracy tolerances, with segment-specific tuning by category or asset type
  • LLMs and foundation models in production, for both internal tooling and user-facing product
  • MLflow or a comparable tool for experiment tracking and model registry/versioning
  • Production model-serving on AWS that was yours — capacity planning, autoscaling, and diagnosing memory and timeout failures at scale
  • CI/CD, production workflow orchestration, and IaC
  • A pragmatic bias. Value delivered incrementally over the perfect rebuild
Bonus:

real-time or low-latency serving at scale. Startup experience. You collect, or you have opinions about the collectibles market.

How We'll Interview You
  • Recruiter screen — 25 minutes. Come ready to talk about the metric you own today, why Alt specifically, and how you're actually using AI. We'll answer your questions and align on comp.
  • Hiring manager with Dae, Head of Data — 45 minutes. Be ready to go deep on a model you took to production and kept there: the systems design, what you owned, where it broke, and what you'd do differently.
  • System design— 45 minutes. Design a model-serving path under real constraints. We'll push back on at least one of your choices on purpose — how you take that matters as much as the design.
  • Team interview- 45 minutes. How you work with the people who depend on your models, including our Expert Pricers.
  • Dae — 30 minutes, then Leore, our founder and CEO — 30 minutes. Everyone who joins Alt meets Leore. Come with a point of view on where you'd take our pricing intelligence.
Compensation:

$230,000 - $250,000 per year, plus equity for all full-time employees.

What We Offer
  • We cover 85% of your medical, dental, and vision, and up to 50% for dependents. HSA/FSA available
  • Generous PTO that people actually take
  • Parental leave at full salary
  • $200/month wellness + $100/month home office stipend
  • Free DoorDash Pass membership, because dinner shouldn't be a decision
  • Remote-first (for most positions), with WeWork access when you want a room with other humans
  • 401(k)
  • Alt Equity to all full-time employees
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