PazaJobs

Member of Technical Staff (Answer Quality & Evals)

Perplexity · San Francisco
Remote Full-time Mid-Senior AI Research & Systems United States 180.000–250.000 USD

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Responsibilities

  • Build systems and pipelines for Search, Product, and other teams to access reliable eval verdicts
  • Own the evals-to-product loop, turning raw signals into durable datasets
  • Build a robust simulator pipeline for replaying user interactions
  • Maintain data trust with monitoring, lineage, and quality checks
  • Operate in a small, high-impact team shaping Answer Quality measurement

Requirements

  • 3+ years of software engineering experience shipping production systems
  • Strong proficiency in Python and SQL
  • Experience with big data systems including distributed compute and large-scale storage
  • Solid fundamentals in data modeling, system design, and debugging distributed systems
  • Experience with AWS and lakehouse ecosystems like Databricks or Spark
  • Comfortable with agentic coding workflows and using AI-assisted development tools

Skills

  • Python
  • SQL
  • AWS
  • Databricks
  • Spark
  • Data Modeling
  • System Design
  • LLM/VLM Interfaces
  • Data Pipelines
  • Evaluation Systems

Benefits

  • Competitive salary and equity package
  • Comprehensive health, dental, and vision coverage
  • Flexible PTO and parental leave
  • Remote-friendly work environment
  • Learning and development budget
  • Latest hardware and tools
Perplexity serves tens of millions of users daily with reliable, high-quality answers grounded in an LLM-first search engine and specialized data sources. The Answer Quality team ensures that our prompts, tools, search systems, datasets, and models work together to create the best possible experience for our users. As our product and agent capabilities evolve, we need evaluation systems that are fast, reliable, production-faithful, and actionable. In this role, you will build and improve the technical foundations that support Answer Quality across Perplexity. This includes our shared evaluation infrastructure and the platform used to replay and analyze agent traces. You will work closely with data scientists, engineers, and product teams to identify quality problems, measure their impact, and turn evaluation findings into product improvements. RESPONSIBILITIES - Build shared evaluation infrastructure that helps teams run reliable evals, analyze results, and make product and model decisions - Develop the platform for replaying and analyzing agent traces to reproduce production behavior and diagnose failures - Build and operate scalable systems for processing, storing, and monitoring interaction, trace, and evaluation data - Partner with data scientists, engineers, and product teams to turn answer-quality problems into evaluations, analyses, and product improvements - Operate in a small, high-impact team where your work directly shapes how Perplexity measures and improves Answer Quality QUALIFICATIONS - 4+ years of software, data, or machine learning engineering experience shipping and operating production systems - Strong proficiency in Python and SQL, with solid fundamentals in system design, data modeling, and distributed systems - Experience building big-data systems, including distributed compute, large-scale storage, and high-volume pipelines - Demonstrated ownership of ambiguous technical projects from initial design through production operation - Ability to work effectively with data scientists, engineers, and product partners PREFERRED QUALIFICATIONS - Experience building evaluation, experimentation, observability, or machine learning infrastructure - Familiarity with LLM and agent systems, including tool use, execution traces, replay, and simulation - Experience building on top of large-scale data processing platforms such as Databricks, Snowflake, or ClickHouse

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