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Member of Technical Staff; RecSys

Job in Palo Alto, Santa Clara County, California, 94306, USA
Listing for: Astrocade
Full Time position
Listed on 2026-09-10
Job specializations:
  • Software Development
    Backend Developer
Salary/Wage Range or Industry Benchmark: 120000 - 160000 USD Yearly USD 120000.00 160000.00 YEAR
Job Description & How to Apply Below
Position: Member of Technical Staff (RecSys)

About Astrocade

Astrocade is a UGC gaming platform where anyone can turn an idea into a playable, shareable game in days, not months. Think You Tube, but for games. We've grown to more than 20 million users within just a few months of launch, and we're only getting started. Backed by Sequoia, NVIDIA, and Google, Astrocade was founded by Amir Sadeghian (Stanford PhD), Ali Sadeghian (Ex-Google Research), and Fei-Fei Li (Godmother of AI).

We're building the infrastructure for a new era of interactive entertainment.

About the Role

Our recommendation system doesn't exist yet, and it needs to. We have a large and fast-growing catalog of games, millions of users, and new content being created every day. What you show someone, and when, is the difference between a session that lasts two minutes and one that lasts two hours. As our Rec Sys founding member, you'll own this problem end-to-end - set the architecture, build the foundation, and grow it from rule-based systems to deep learning.

The decisions made now will shape how discovery works on the platform for years.

You’ll report to the CTO, and work directly with the co-founders. This is a 0 to 1 build with full ownership.

What You’ll Do
  • Design and build the systems that decide which games surface to which players, from candidate retrieval through final ranking
  • Own the full data pipeline - ingestion, feature engineering, training data construction, and low-latency serving
  • Build personalization systems and models that adapt to user behavior, preferences, and context over time
  • Build eval infrastructure to measure recommendation quality: offline metrics, online experiments, and business outcomes
  • Run A/B tests and translate results into concrete system improvements
  • Instrument the recommendation stack deeply so the team can move fast with confidence
You’d Be a Great Fit If You:
  • Have 4-7+ years of experience in recommendation systems, ML engineering, or applied ML in a consumer context
  • Have built ranking or personalization systems end-to-end - feeds, video, gaming, or similar
  • Experience running recommendation evals end-to-end (offline + online)
  • Understand the full stack - data pipelines, feature stores, model training, and serving
  • Are comfortable making architectural decisions on a greenfield system without much scaffolding
  • Are self-directed and energized by ownership, not just execution
Bonus Points
  • Experience at companies with large-scale consumer recommendation systems (You Tube, Netflix, Tik Tok, Instagram, Linked In, Twitter/X)
  • Familiarity with both rule-based and deep learning approaches, and when to use each
  • Background in UGC or creator platforms where content is high-volume and fast-changing
Compensation & Benefits
  • Competitive base + equity + bonus
  • Health, dental, and vision coverage
  • Lunch provided daily

Join us to help build the future of interactive entertainment.

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