Replit
Data Scientist, People
Vaga remota de Product Operations com fit claro de localização do candidato.
Publicada19 de mai. de 2026
Países elegíveis1 país aceito
Sinal de senioridadeNível aberto
Modelo de trabalhoRemoto
Locais aceitos para candidatos
Estados Unidos
Resumo da vaga
Data Scientist, People
Requisitos e responsabilidades
Conteúdo da vaga extraído em seções para revisão mais rápida.
In this role, you will
- Build the analytical foundation to evaluate compensation competitiveness. Connect Ashby offer data, band position, acceptance rates, and market benchmarks into a live system that recommends specific adjustments.
- Develop predictive models and tooling that help managers and recruiters make better decisions faster. Example: a regretted attrition model that flags at-risk employees 90 days in advance and surfaces the underlying signals directly into manager 1:1 prep.
- Design and deploy AI agents that draft first-pass recommendations for high-stakes People decisions, including compensation, promotion, and hiring. People leaders review and adjust rather than starting from scratch.
- Build the recruiting analytics layer that connects sourcing channel to time-to-hire to first-year performance to tenure. Use it to reallocate recruiting spend and surface weekly insights to recruiting leadership.
- Analyze organizational effectiveness, including spans and layers, talent density, and hiring efficiency. Identify where the org is over-leveled, under-leveled, or structurally inefficient.
- Partner with Finance to move from spreadsheets to live workforce model that accounts for attrition, hiring velocity, and ramp time by function.
- Use LLMs and agentic workflows to analyze unstructured People data at scale, including support tickets, exit interviews, performance reviews, and engagement survey responses.
- Replace recurring reporting cycles with always-on agents that surface insights to leaders when they need them, not on a quarterly schedule.
- Support high-stakes organizational and talent decisions with rigorous analysis, including executive hiring, retention, and reorganizations.
Required Skills & Experience
- Minimum 6 years of experience. Targeting Senior or Staff Data Scientist depending on demonstrated scope and impact.
- Experience in People Analytics, compensation analytics, or workforce analytics
- Strong SQL and Python skills
- Experience building predictive models and analytical frameworks for business decision-making
- Strong statistical foundation, including experimentation and causal inference
- Experience working with large-scale operational or behavioral datasets
- Demonstrated experience using AI and LLMs in analytics workflows
- Ability to communicate complex insights clearly to executives and cross-functional partners
- High ownership mindset and comfort operating in fast-moving environments
- Ability to handle highly sensitive organizational and compensation data with discretion
Preferred Qualifications
- Experience at a high-growth or AI-native company
- Experience building internal tools, agents, or automated workflows
- Familiarity with organizational design, compensation, or talent management concepts
- Experience with modern data stack tools (dbt, BigQuery, Snowflake, etc.)
- Experience with People systems such as Rippling, Ashby, Lattice, or Carta
Bonus Points
- Experience building on Replit
- Experience with NLP or unstructured text analysis
- Interest in the future of AI-native organizations and how AI changes the way companies operate
Bonus Points
- Meet the Replit Agent
- Replit: Make an app for that
- Replit Blog
- Amjad TED Talk
Bonus Points
- Operating Principles
- Reasons not to work at Replit
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