Lead, Workforce Intelligence

SalesforceIndianapolis, IN
$148,500 - $223,900

About The Position

Salesforce is seeking a Lead in Workforce Intelligence with a specialized focus on Machine Learning and Applied Research. In this role, you will drive the end-to-end lifecycle of workforce research - from problem formulation and experimental design to the delivery of high-fidelity predictive models. You will combine deep technical expertise in Machine Learning with a consulting mindset to help leaders decode complex workforce patterns and employee experiences. This is an individual contributor (IC) role; you will not have direct reports, but will be expected to lead through influence, technical expertise, and cross-functional collaboration. You will be expected to drive impact through computational rigor and technical evangelism, transitioning ad-hoc research into scalable, reproducible, and automated tools that provide real-time guidance to the business.

Requirements

  • Master’s or PhD in a highly quantitative or computational research field (e.g., Computer Science, Data Science, I/O Psychology, Econometrics, or Statistics).
  • 5+ years of experience in data science, people analytics, or applied research, with a track record of delivering scientific insights to leadership (Director+).
  • Mastery of Python or R and SQL is required. Candidates must be proficient in performing data manipulation, statistical modeling, and automation within a code-based environment.
  • Expert-level proficiency in Tableau; experience architecting visuals that simplify complex, heterogeneous enterprise data.
  • Experience with ML frameworks (e.g., Scikit-learn, PyTorch, TensorFlow) and advanced techniques, including NLP, clustering, or LLM-driven labeling.
  • Deep understanding of experimental design, causal inference, and computational statistics.
  • Exceptional skills in translating complex technical concepts for non-technical audiences and informing specific team or stakeholder actions.
  • Proven ability to operate with moderate autonomy, handling day-to-day projects independently while seeking guidance for high-level strategy and prioritization.

Responsibilities

  • Define ambiguous business challenges as rigorous research questions.
  • Assess and prioritize new work for scope and urgency, managing stakeholder expectations and pivoting based on changing business needs.
  • Conduct mid-to-high complexity data analyses, building robust Machine Learning models (predictive and descriptive) on structured and unstructured enterprise data.
  • Lead the development of causal identification strategies to determine the effectiveness of talent initiatives.
  • Drive the "productization" of data by architecting high-impact, self-service analytics tools.
  • Ensure models and dashboards integrate seamlessly with existing business tools to provide actionable, real-time insights.
  • Lead the strategic narrative on workforce data by translating complex ML outputs into clear, compelling narratives.
  • Articulate findings clearly to inform specific stakeholder actions, demonstrating how data leads to concrete outcomes.
  • Remain at the forefront of emerging AI, Agents, and LLMs.
  • Proactively champion their adoption and train others on new solutions to ensure they integrate into a human-centric talent model.
  • Partner with cross-functional peers (e.g., Data Engineering, Finance, Business Partners) on projects involving people data or metrics, ensuring alignment and providing high-quality, accurate insights.

Benefits

  • time off programs
  • medical
  • dental
  • vision
  • mental health support
  • paid parental leave
  • life and disability insurance
  • 401(k)
  • employee stock purchasing program
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