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Internship - Search Machine Learning Engineer

Perplexity

LondonAll jobs in London (170)Full-time

Also open in Belgrade

Perplexity is hiring a full-time Search Machine Learning Engineer Intern in London for a 12 to 24 week in-person placement. The role focuses on search technology, including retrieval, ranking, evaluation, and related model development, with work on experimentation, deployment, monitoring, and RAG pipelines. Applicants should have a solid grounding in machine learning and statistics, along with Python and familiarity with ML frameworks such as PyTorch, TensorFlow, or JAX. It would suit someone with interest or experience in search, recommendation, or NLP, who is proactive, curious, and comfortable working closely with other engineering and product teams.
Perplexity is looking for a Search Machine Learning Engineer Intern to help build the next generation of advanced search technologies, with a focus on retrieval and ranking. You will work closely with experienced engineers to improve search quality, experiment with new models, and ship features that directly impact how users search and discover information. Internship program: 12 - 24 weeks, full-time, in-person in the London office. Responsibilities: - Contribute to experiments that improve search quality through better models, data usage, and evaluation tools, under the guidance of senior engineers. - Design and implement components of the search platform and model stack, including retrieval, ranking, and classification models. - Train evaluating models (including LLM-based approaches) for retrieval, ranking, and classification tasks. - Support deployment and monitoring of search and ranking models in a scalable and performant way. - Help build and iterate on RAG pipelines for grounding and answer generation. - Collaborate with Data, AI, Infrastructure and Product teams to deliver improvements quickly and learn best practices in production ML. Qualifications: - Strong foundation in machine learning and statistics, with coursework or projects related to information retrieval, ranking, or recommender systems. - Experience with Python and common ML frameworks (e.g. PyTorch, TensorFlow, JAX) through academic, open source, or personal projects. - Familiarity with evaluating model quality using offline metrics and/or A/B testing is a plus, but not required. - Previous experience (internships, research, or significant projects) working on search, recommendation, or NLP is a plus, but not required. - Self-driven and curious, with a strong sense of ownership, willingness to learn, and comfort working in a fast-paced environment - Experience with Rust will be a plus
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