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Member of Technical Staff (Data Scientist, Evals)

Perplexity
📍 London🗓 Posted 2026-02-13
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Perplexity serves tens of millions of users daily with reliable, high-quality answers grounded in an LLM-first search engine and our specialized data sources. We aim to use the latest models as they are released, but the intelligence frontier is a jagged one, and popular benchmarks do not effectively cover our use cases. In this role, you will build specialized evals to improve answer quality across Perplexity, covering search-based LLM answers and other scenarios popular with our users.

Responsibilities

• Architect and maintain automated evaluation pipelines to assess answer quality across Perplexity's products, ensuring high standards for accuracy and helpfulness

• Design evaluation sets and methods specifically to measure the impact of tool calls (particularly web search retrieval) on the final answer's quality

• Develop VLM-based solutions to programmatically evaluate how final answers render visually across different platforms and devices

• Continuously review public benchmarks and academic evaluations for their applicability to the Perplexity product, adapting and incorporating them into our regular performance measurements

• Operate within a small, high-impact team where your evaluation metrics directly shape product changes, collaborating closely with technical leadership to measure and improve Answer Quality

Qualifications

• PhD or MS in a technical field or equivalent experience

• 4+ years of experience in data science or machine learning

• Strong proficiency in Python and SQL (expected to write production-grade code)

• Experience building within a modern cloud data stack, specifically AWS and Databricks

• Comfortable with agentic coding workflows and using AI-assisted development tools to iterate faster

Preferred Qualifications

• 1+ years of experience working with LLMs at scale, specifically with LLM-as-a-judge setups

• Prior experience working on customer-facing web products or consumer apps, with real user traffic at scale

• A strong research background, with experience applying research methods to real-world ML problems

• Experience defining evaluation metrics (e.g., factual consistency, hallucination rate, retrieval precision) and building ground truth datasets

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