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Launch Potato

Lead Machine Learning Engineer, Recommendation Systems

Launch Potato, Kansas City, Missouri, United States, 64101

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Lead Machine Learning Engineer, Recommendation Systems

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Launch Potato

Who Are We? Launch Potato is a profitable digital media company that reaches over 30M+ monthly visitors through brands such as FinanceBuzz, All About Cookies, and OnlyInYourState. As The Discovery and Conversion Company, our mission is to connect consumers with the world’s leading brands through data-driven content and technology. Headquartered in South Florida with a remote-first team spanning over 15 countries, we’ve built a high-growth, high-performance culture where speed, ownership, and measurable impact drive success.

Why Join Us? At Launch Potato, you’ll accelerate your career by owning outcomes, moving fast, and driving impact with a global team of high-performers. We convert audience attention into action through data, machine learning, and continuous optimization. We’re hiring a Machine Learning Engineer (Recommendation Systems) to build the personalization engine behind our portfolio of brands. You’ll design, deploy, and scale ML systems that power real-time recommendations across millions of user journeys. This role gives you the chance to work on systems serving 100M+ predictions daily, directly impacting engagement, retention, and revenue at scale.

Compensation $165,000 - $215,000 per year, paid semi-monthly

MUST HAVE

7+ years building and scaling production ML systems with measurable business impact

Experience deploying ML systems serving 100M+ predictions daily

Strong background in ranking algorithms (collaborative filtering, learning-to-rank, deep learning)

Proficiency with Python and ML frameworks (TensorFlow or PyTorch)

Skilled with SQL and modern data warehouses (Snowflake, BigQuery, Redshift) plus data lakes

Familiarity with distributed computing (Spark, Ray) and LLM/AI Agent frameworks

Track record of improving business KPIs via ML-powered personalization

Experience with A/B testing platforms and experiment logging best practices

Your Role Your mission: Drive business growth by building and optimizing the recommendation systems that personalize experience for millions of users daily. You’ll own the modeling, feature engineering, data pipelines, and experimentation that make personalization smarter, faster, and more impactful.

Outcomes

Build and deploy ML models serving 100M+ predictions per day to personalize user experiences at scale

Enhance data processing pipelines (Spark, Beam, Dask) with efficiency and reliability improvements

Design ranking algorithms that balance relevance, diversity, and revenue

Deliver real-time personalization with latency

Run statistically rigorous A/B tests to measure true business impact

Optimize for latency, throughput, and cost efficiency in production

Partner with product, engineering, and analytics to launch high-impact personalization features

Implement monitoring systems and maintain clear ownership for model reliability

Competencies

Technical Mastery: You know ML architecture, deployment, and tradeoffs inside out

Experimentation Infrastructure: You set up systems for rapid testing and retraining (MLflow, W&B)

Impact-Driven: You design models that move revenue, retention, or engagement

Collaborative: You thrive working with engineers, PMs, and analysts to scope features

Analytical Thinking: You break down data trends and design rigorous test methodologies

Ownership Mentality: You own your models post-deployment and continuously improve them

Execution-Oriented: You deliver production-grade systems quickly without sacrificing rigor

Curious & Innovative: You stay on top of ML advances and apply them to personalization

EEO Statement Launch Potato is a Equal Employment Opportunity company. We value diversity, equity, and inclusion. We do not discriminate based on race, religion, color, national origin, gender (including pregnancy, childbirth, or related medical conditions), sexual orientation, gender identity, gender expression, age, status as a protected veteran, status as an individual with a disability, or other applicable legally protected characteristics.

Seniority level

Mid-Senior level

Employment type

Full-time

Job function

Engineering and Information Technology

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