Member of Technical Staff (ML Engineer, Recommendations & User Modeling)
Perplexity
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This role on the market
13 open recommendations roles across 9 companies are on ApplySarthi right now, most of them in Bengaluru (1).
- Lead Data Scientist - Recommendations (applied ML, Reinforcement Learning, Contextual Bandit Design)Target
- Lead Product Manager - Search & RecommendationsLowes
- Senior Software Engineer, Search & RecommendationsRoku
- Staff Machine Learning Engineer, RecommendationsZipRecruiter
- Omnichannel Recommendations - GTM SpecialistConstructor
What recommendations roles keep asking for: LLMs (54%), Deep learning (38%), Machine learning (38%), Python (38%), Generative AI (31%), PyTorch (31%), Product management (23%), Spark (23%) — counted across their open postings here.
Member of Technical Staff jobs in the United States · Member of Technical Staff jobs in San Francisco · Remote Member of Technical Staff jobs · LLMs jobs
Perplexity has 123 open roles listed here.
- Engineering Manager, (Multimodal)
- Member of Technical Staff (Search Core DevOps Engineer)
- Global Mobility Lead
- Member of Technical Staff (New Grad)
- Member of Technical Staff (Machine Learning Research Engineer)
Counted across 14 company job boards, updated as roles open and close.
Preparing for this interview
Interviews for recommendations roles keep coming back to LLMs, Deep learning, Machine learning, Python. Practise those questions before you sit with Perplexity.
Questions you are likely to be asked
- Why do you want to join Perplexity?
- What is your experience with LLMs? Tell me one thing you learned the hard way.
- How would you explain your model's result to someone who is not technical?
- What would you check first if a model's accuracy dropped after going live?
- When would you not use machine learning for a problem?
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Practise the Member of Technical Staff (ML Engineer, Recommendations & User Modeling) at Perplexity interview free →Perplexity is seeking experienced ML engineers to design, build, and optimize the recommendation systems that power core experiences on Perplexity. Perplexity builds AI for those who expect more. Our products are designed to help people find answers, make their most consequential decisions, and complete increasingly ambitious work. Across these use cases, the Perplexity experience must feel deeply personal. Great recommendations and user understanding are central to delighting and delivering for each user. To do this, we are reimagining recommendation systems for the LLM era. Our goal is to combine the intelligence of frontier LLMs, the personalization context that comes from real product usage, and the continual learning capabilities of modern recommendation systems. We build systems that draw on past context and connected data sources to deeply understand each user's needs and recommend the actions that help them get the most out of Perplexity. Why Perplexity is Different Craftsmanship . We build high quality, tasteful products targeting both AI native and AI curious users. Ownership . You identify the problem, design the solution and ship it. Entrepreneurship . We think like founders, act with urgency, and hustle to deliver for each other and our users. Scholarship . Work among highly talented peers, pursuing knowledge and truth, upleveling ourselves, our teams, and our products. Partnership . We amplify each others’ strengths, break down silos, and give selflessly to help our colleagues deliver excellence. What you'll do Own the personalization and ranking behind key product surfaces to make Perplexity more useful and drive impact on core user and business metrics. Build user modeling that captures intent, preference, and propensity, and powers more relevant, more personalized experiences. Design the decision layer that balances competing objectives to produce the best overall experience for the user. Build the data and evaluation foundations that let these systems learn and improve with usage. Help shape the technical direction of ranking, recommendations, and personalization at Perplexity. What we're looking for Deep, hands-on experience building production recommendation, ranking, or personalization systems at scale. Strong ML fundamentals, covering areas such as engagement modeling, model calibration, offline and online metrics, and online experimentation. Experience integrating LLMs into ranking, retrieval, or personalization pipelines. Taste and judgment for how personalization should work in an LLM-native product, and curiosity about reimagining it from first principles. For tech leadership roles, we will also look for prior experience setting technical direction for recommendation/ranking projects. Nice to have Experience with large-scale ranking and training infrastructure (multi-stage retrieval and ranking, feature stores, real-time serving). Background in user understanding, feed ranking, notifications, growth, or lifecycle modeling. Our Mission Perplexity’s mission is to power curiosity. Curious people are the people who drive change in the world. Driving change is a continuous cycle of learning, building, and integrating. Learn : curious people constantly learn new things by asking more. They question the status quo in their own expertise and they constantly learn outside of it. Research is essential to them and never ending. Build : curious people make and create things, to show the world their new answers to problems no one else ever questioned. They take action on what they’ve learned. Makers need tools to create their products, their companies, their reality. Integrate : they must interact with the world as it is to drive change and adoption. True leaders do not simply build something and hope. They must have armies of agents and workers who can constantly work in millions of small ways. Repeat . For curious people this is a cycle that never ends.
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Listed on ashby · posted 2026-06-06. ApplySarthi collects openings and links to application pages; the role is advertised by Perplexity, not by us.