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Executive Curation Scientist Jobs (NOW HIRING)

Executive Sous Chef

Toledo, OH

$59K - $76K/yr

Degree in Culinary science or related certificate Join us in the excitement of introducing the all ... We're not just about accommodation; we're about curating unforgettable experiences, be it for ...

... to business and executive leadership, driving the development and deployment of intelligent ... Contribute to the platform's Evaluation Harness process, including golden dataset curation, rubric ...

... to business and executive leadership, driving the development and deployment of intelligent ... Contribute to the platform's Evaluation Harness process, including golden dataset curation, rubric ...

Senior Data Scientist

San Antonio, TX · On-site

$140 - $210/hr

... to business and executive leadership, driving the development and deployment of intelligent ... Contribute to the platform's Evaluation Harness process, including golden dataset curation, rubric ...

... to business and executive leadership, driving the development and deployment of intelligent ... Contribute to the platform's Evaluation Harness process, including golden dataset curation, rubric ...

... bidding efficacy and audience curation to measurement, attribution, and our centralized ... Communicate findings clearly to technical and executive audiences, and mentor other analysts and ...

New

Senior Data Scientist

Mountain View, CA · On-site +1

$161K - $274K/yr

Partner with executive, product and engineering teams to define and govern Moveworks' critical ... Demonstrated expertise in LLM evaluation methodology, including dataset curation, benchmarking, and ...

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How much do executive curation scientist jobs pay per year?

As of Aug 15, 2026, the average yearly pay for executive curation scientist in the United States is $90,961.00, according to ZipRecruiter salary data. Most workers in this role earn between $68,000.00 and $100,000.00 per year, depending on experience, location, and employer.
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Infographic showing various Executive Curation Scientist job openings in the United States as of August 2026, with employment types broken down into 1% Internship, 89% Full Time, 6% Part Time, and 4% Contract. Highlights an 84% Physical, 5% Hybrid, and 11% Remote job distribution, with an average salary of $90,961 per year, or $43.7 per hour.

Data Scientist (Talent/People Analytics) and HR

ConfigUSA

Renton, WA • On-site

Contractor

Re-posted 25 days ago


Job description

100% on-site

Role: Data Scientist

Must Have Skills:

· Bachelor’s degree in Data Science, Statistics, Computer Science, Economics, Engineering, or related field; advanced degree preferred.

· 7+ years of applied data science experience, with at least 5 years in Talent/People Analytics, or consulting for large enterprises.

· Demonstrated experience delivering end-to-end analytics and deploying models to production in cross-functional environments.

· Strong experience with HR systems and data models (Workday, PeopleSoft) or equivalent enterprise HR data experience.

· Modeling & methods: strong foundations in statistical modeling (linear/logistic regression, survival analysis/time-to-event where relevant), tree-based methods, clustering, causal methods, and applied NLP/transformer/LLM techniques for text- based HR applications.

· Programming: production-capable Python coding (modular design, testing, packaging) experience with version control (Git), and collaboration with DevOps/CI-CD workflows.

· Data engineering & infrastructure: experience working with ETL, feature engineering, data warehouses/lakes, and modern cloud platforms; familiarity with Spark, dbt, Airflow, or equivalents desirable.

· Model lifecycle & tooling: familiarity with model registries and lifecycle tools (MLflow, Seldon, Terraform/Helm or equivalent), explainability tools (SHAP, LIME), fairness/tooling (AIF360 or equivalent), and monitoring frameworks.

· Querying & visualization: advanced SQL skills; experience with BI/visualization tools (Tableau, Power BI) and producing executive-ready dashboards and narratives.

· Privacy & security: practical knowledge of de-identification, synthetic data, and access-control patterns for sensitive HR data.

Roles & Responsibilities

· Lead end-to-end analytic projects: define problem statements with HR stakeholders, design experiments, select appropriate methods, develop models, validate results, and deliver production-ready solutions and monitoring.

· Build predictive and prescriptive models for talent use cases (attrition/retention, internal mobility, promotion forecasting, performance indicators, recruitment sourcing/scoring, skilling/curation, compensation analytics).

· Develop and productionize features and models in collaboration with data engineers and ML engineers: implement reproducible ETL, feature pipelines, model training pipelines, CI/CD, and deployment patterns.

· Apply statistical methods, hypothesis testing, causal inference where appropriate, and robust validation (cross-validation, holdouts, calibration, fairness testing) to ensure reliable, defensible results.

· Design and operationalize NLP/LLM solutions for HR use cases (resume parsing, candidate experience, employee feedback analysis) while enforcing privacy, data minimization and explainability requirements.

· Instrument model monitoring and drift detection; define alerting, retraining triggers, and remediation plans.

· Produce clear, actionable visualizations and dashboards that tell the story of analytic findings and drive decisions; collaborate with BI developers to operationalize reporting.

· Translate technical analyses into business recommendations, quantify expected impact, and work with partners to implement changes and measure outcomes.

· Mentor junior data scientists/analysts, review code and model artifacts, and help raise team standards for reproducibility, documentation, and governance.

· Ensure models and data products adhere to governance, privacy, and ethical requirements; collaborate with HR Data Steward, Legal/Privacy, and Ethics/AI governance on reviews and approvals.

 Managerial Skills:

· Problem-solver with product mindset: frames analytics as business products with clear KPIs and adoption plans.

· Ownership & results orientation: takes accountability for delivery, end-to-end operation, and measurable impact.

· Communication & storytelling: synthesizes complex analyses into concise recommendations for HR leaders and executives.

· Collaboration & influence: builds strong cross-functional relationships and navigates competing priorities.

· Coaching & development: mentors peers and contributes to team capability growth.

· Ethical judgment: prioritizes fairness, privacy, and employee impact in modelling decisions