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Machine Learning Manager, Feed Relevance (Retrieval)

Lead a high-impact team of Machine Learning Engineers to enhance Reddit's personalized feeds and improve user experience.

Location
Remote - United States
Compensation
$253.3k–$354.6k/yr
Level
lead
Type
full time · Remote

Posted by employer 2 months ago

First seen on Joblaze 2 months ago

Last verified on the company career page 7 hours ago

Role intensity

10% coding — mostly leadership/strategy

AI in the day-to-day

Applying ML / AI in production to improve Reddit Relevance.

Requirements

Experience
2+ years

Not disclosed in this posting: visa sponsorship.

Benefits

401k Match Flexible Vacation Mental Health & Coaching Benefits Equity/Stock Options Health Insurance Parental Leave

Joblaze summary

In the role of Machine Learning Manager for Feed Relevance at Reddit, the individual will lead a team focused on developing and optimizing systems that enhance content retrieval for personalized user feeds. Key skills include expertise in large-scale ML systems, particularly in recommender systems and retrieval models, alongside strong strategic and communication abilities. This position is ideal for someone with a background in managing ML teams and a passion for creating impactful AI solutions. The role offers the opportunity to shape the user experience for millions of daily visitors.

Joblaze insights

  • Listed about 2 months ago — first seen on Joblaze July 31, 2026. Last confirmed on Reddit's careers page October 8, 2026.
  • Salary band is above the typical range for AI/ML roles (median ~$190,000).
  • Starts above 83% of 53 comparable lead ai/ml roles in United States we track (median $200,000 across 33 companies).
  • Machine Learning appears in 14.9% of 101 comparable lead ai/ml roles in United States; Recommender Systems appears in 1% of 101 comparable lead ai/ml roles in United States.

Quick facts

Is the Machine Learning Manager, Feed Relevance (Retrieval) role remote?
Yes — Reddit lists this as a fully remote position.
What's the salary range?
Reddit lists $253,300–$354,600 for this role.
How much experience is required?
At least 2 years of relevant experience for this Machine Learning Manager, Feed Relevance (Retrieval) role.
What's the tech stack?
Joblaze extracted these technologies from the posting: AI, ML systems, Machine Learning, Recommender Systems.
What seniority level is this role?
Reddit targets lead candidates for this position.
Is this full-time or contract?
Full-time for this Machine Learning Manager, Feed Relevance (Retrieval) role at Reddit.

From the original posting

Reddit is a community of communities. It’s built on shared interests, passion, and trust, and is home to the most open and authentic conversations on the internet. Every day, Reddit users submit, vote, and comment on the topics they care most about. With 100,000+ active communities and approximately 130 million daily active unique visitors, Reddit is one of the internet’s largest sources of information. For more information, visit www.redditinc.com.

Reddit is looking for an experienced Engineering Manager to lead our Feed Retrieval team. In this role, you’ll lead a high-impact team of Machine Learning Engineers building the systems that identify, retrieve, and shape the candidate inventory powering Reddit’s personalized feeds. Your team will work at the foundation of Feed Relevance: expanding the set of high-quality content Reddit can recommend, improving personalization and discovery for users across different levels of signal, and building scalable ML systems that directly shape the experiences of over 120M+ daily users.

If applying ML / AI in production to improve Reddit Relevance excites you, then you’ve found the right place.

Responsibilities:

  • Define Technical Vision & Strategy: Define the technical vision and long-term roadmap for Feed Retrieval, aligning large-scale recommender-system investments with Reddit’s product, ecosystem, and business objectives.
  • Roadmap & Prioritization: Translate broad Feed Relevance goals into a focused team roadmap, making clear prioritization tradeoffs across model quality, inventory expansion, experimentation velocity, infrastructure cost, and operational reliability.
  • Team Leadership & Development: Coach and support the development of your team, constantly seeking opportunities to grow their skills and impact.
  • Technical Execution & Delivery: Oversee the design, development, and optimization of retrieval systems that source relevant, diverse, fresh, and high-quality candidates for personalized feed experiences.
  • Measurement & Learning: Establish strong measurement, experimentation, and debugging practices so the team can understand retrieval quality, candidate coverage, source incrementality, and downstream impact.
  • Platform & Infrastructure Collaboration: Collaborate with ML platform, infrastructure, ranking, safety, and product teams to build scalable, low-latency retrieval systems that can support the next generation of AI-powered recommendations.
  • Operational Excellence: Maintain high standards for system performance, reliability, latency, cost efficiency, and responsible recommendation practices.
  • Cross-Functional Partnership: Work with cross-functional partners from across the company to identify key areas of opportunity, set expectations, and communicate your team’s work.
  • Recruiting & Growth: Partner with our incredible recruiting team to attract, interview, and hire diverse and talented machine learning engineers, growing a world-class team.

Qualifications:

  • Experience Leading ML Teams: 2+ years of experience building and managing high-performing ML or recommender-systems teams.
  • Deep ML Expertise: Hands-on experience with large-scale production ML systems, ideally including recommender systems, retrieval models, embedding-based systems, sequence models, transformer-based architectures, or LLM-powered recommendation applications.
  • Technical Domain Knowledge: Strong understanding of recommender systems, especially candidate retrieval, embedding/indexing systems, ranking handoffs, feed personalization, exploration, content quality, and measurement strategies.
  • Strategic Thinking: Ability to develop and communicate a clear technical strategy across ambiguous problem spaces, balancing user relevance, ecosystem health, system scalability, and business impact.
  • Impact-Driven Mindset: Passion for developing scalable, well-designed, and responsible AI solutions that drive business value.
  • Exceptional Communication & Collaboration: Strong interpersonal skills and a collaborative mindset, with the ability to effectively communicate complex technical topics to diverse audiences and build strong relationships with cross-functional partners.

#LI-remote, #LI-JS5

Pay Transparency:

$253,300—$354,600 USD

In select roles and locations, the interviews will be recorded, transcribed and summarized by artificial intelligence (AI). You will have the opportunity to opt out of recording, transcription and summarization prior to any scheduled interviews.

Standard company text repeated across Reddit's postings is omitted here.

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