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Phantom

Staff Machine Learning Engineer

Undisclosed

Remote. The employer does not say where candidates may be based.

Location not stated

Employer listed it 9 days ago · Added 5 days ago

First listed 9 days ago and still open.

Salary

Not stated

Location

Location not stated

Timezone

Not stated

Contract

Full-time

Experience

Lead

Category

Data

This employer didn't state pay. Jobs like this usually pay around $185k–$265k a year, a typical range taken from 158 lead-level data roles on Nomaders that do state pay. It's a guide, not an offer.

Remote flexibility

Undisclosed

The listing is advertised as remote but does not state which countries or regions candidates may work from.

Why this role is Undisclosed

We only label a role Work from anywhere, Region restricted or Work from home when the employer's own wording says so. We checked this advert under our current rules and found no country or region eligibility requirement in it. We don't guess, so it stays Undisclosed until the employer publishes enough location information. Here is exactly what the advert left out.

  • Countries you can work from: Not stated. The advert only gives "Remote", which names no country you must live in.
  • Whether the work is remote: Confirmed by the employer: "We are around 180 people, fully remote"
  • Working hours: Not stated. No timezone overlap or set hours are mentioned, so assume nothing either way.

Worth a look all the same. Missing wording is usually a rushed job posting rather than a closed door, so ask where you can be based in your first message, before you write a tailored application.

What the employer says

  • Source listing states candidate location: "Remote"

What Nomaders makes of it

  • No residency or region requirement found in the job description
  • Check with the employer before assuming you can work from abroad

The quotes above are the employer's own words; the reading is ours. Always check the original listing and employment terms before working from another country.

About the role

Phantom is on a mission to connect the world to the freedom of open markets. Tens of millions of people all over the world use Phantom to access global markets that never close, including perpetuals, prediction markets, tokenized assets, stablecoins and memes. Phantom users are able to discover the markets that matter and the cultural moments that shape them, building conviction through real-time data and the verified performance of top traders. With self-custody and access to open networks at its core, Phantom lets them control their financial moves in the same app they use to safely store or spend money worldwide.

Phantom has reached #1 in Google Play's finance category and consistently ranks in the top 50 apps across all categories. Phantom partners with many of the most trusted and influential names in finance like Hyperliquid, Stripe, Kalshi and Visa, to make the most popular and innovative financial products accessible to everyone.

We are around 180 people, fully remote, backed by a $150M Series C investment from a16z, Sequoia Capital and Paradigm.

Role Overview

We are seeking a visionary and hands-on Staff Machine Learning Engineer to lead the technical strategy, architecture, and execution of our Growth and Engagement ML initiatives . In this role, you will bridge the gap between advanced machine learning and business strategy, designing systems that drive user acquisition, retention, lifetime value (LTV), and deep product engagement.

As a technical pillar of the engineering organization, you will own the end-to-end lifecycle of complex ML models, mentor senior engineers, and collaborate closely with Product, Data Science, and Marketing leadership to move core business metrics.

Key Responsibilities

Technical Leadership & Strategy

Define the long-term technical roadmap for Growth and Engagement ML systems, ensuring scalability, reliability, and measurable business impact.

Architect and deploy production-grade ML pipelines and real-time decisioning systems that power personalization, notification dispatch, and onboarding flows.

Evaluate and integrate cutting-edge ML techniques , including multi-armed bandits, reinforcement learning, LLMs for content generation, and advanced graph neural networks.

Execution & Modeling

Design, train, and validate sophisticated models targeting user lifecycle stages: propensity to churn, lifetime value (LTV) forecasting, next-best-action, and lookalike modeling.

Build and optimize recommendation engines and semantic search systems to surface highly relevant content, products, or features to users.

Establish robust experimentation frameworks (advanced A/B testing, causal inference, and multi-variate testing) to rigorously validate model variants in production.

Collaboration & Mentorship

Partner with Product and Growth marketing teams to translate high-level business hypotheses into precise, actionable machine learning problems.

Mentor and coach senior engineers across the data and ML organizations, fostering a culture of technical excellence and continuous learning.

Advocate for ML engineering best practices , including model monitoring, feature store utilization, reproducible training pipelines, and data governance.

Qualifications & Skills

Experience

8+ years of professional experience in machine learning engineering, data science, or software engineering, with at least 3+ years in a Staff, Principal, or Tech Lead capacity .

Proven track record of building and scaling ML systems specifically within growth, marketing tech, recommendation engines, or consumer engagement domains.

Extensive experience with large-scale data processing and distributed computing.

Requirements

  • ·8+ years of professional experience in machine learning engineering, data science, or software engineering, with at least 3+ years in a Staff, Principal, or Tech Lead capacity .
  • ·Proven track record of building and scaling ML systems specifically within growth, marketing tech, recommendation engines, or consumer engagement domains.
  • ·Extensive experience with large-scale data processing and distributed computing.
  • ·Technical Proficiencies
  • ·Languages: Expert-level Python, Scala, or Java.

Benefits

  • ·Competitive salary and equity
  • ·Comprehensive insurance (medical/dental/vision) 100% covered
  • ·Stipend for your ideal remote / WFH set-up: laptop, headphones, and any other work gear you may need
  • ·Flexible hours and a long-standing, supportive remote environment
  • ·Unlimited vacation: Take time when you need it (and we really mean it!)

How to apply

  1. 1Check the flexibility label above, undisclosed, matches where you plan to live and work.
  2. 2Tailor your CV to the role at Phantom, mentioning your remote working experience.
  3. 3Apply directly on the employer's careers page using the button below. Nomaders never handles your application.

Found 5d ago. Last checked 23 Sept. Always confirm the details on the original posting, salary and location can change after publication.

Listing sourced from Company boards.

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