Lead Data Scientist

Posted 21 Days Ago
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Hyderabad, Telangana, IND
In-Office
Senior level
HR Tech
The Role
Lead Data Scientist will design, build, validate, and deploy ML and statistical models (including NLP/LLM solutions) end-to-end. Partner with stakeholders to frame problems, engineer features from structured and unstructured data, operationalize models with engineering/BI teams, monitor performance, and communicate actionable insights to drive business outcomes.
Summary Generated by Built In

TriNet is a leading provider of comprehensive human resources solutions for small to midsize businesses (SMBs). We enhance business productivity by enabling our clients to outsource their HR function to one strategic partner and allowing them to focus on operating and growing their core businesses. Our full-service HR solutions include features such as payroll processing, human capital consulting, employment law compliance and employee benefits, including health insurance, retirement plans and workers’ compensation insurance.
TriNet has a nationwide presence and an experienced executive team. Our stock is publicly traded on the NYSE under the ticker symbol TNET. If you’re passionate about innovation and making an impact on the large SMB market, come join us as we power our clients’ business success with extraordinary HR.
Don't meet every single requirement? Studies have shown that many potential applicants discourage themselves from applying to jobs unless they meet every single requirement. TriNet always strives to hire the most qualified candidate for a particular role, ensuring we deliver outstanding results for our small and medium-size customers. So if you're excited about this role but your past experience doesn't align perfectly with every single qualification in the job description, nobody’s perfect – and we encourage you to apply. You may just be the right candidate for this or other roles.

A Brief Overview

As a member of the Enterprise Data & Analytics team, the Lead Data Scientist is responsible for applying advanced analytical, statistical, and machine learning techniques to solve complex business problems. This role partners with cross-functional stakeholders to frame business questions, develop predictive and prescriptive models, and deliver insights that drive data-informed decision-making.

This individual will lead analytical solution design end-to-end, from problem framing and data exploration through modelling, validation, and deployment while ensuring results are interpretable, scalable, and aligned to business outcomes.

What You Will Do

Advanced Analytics & Modelling

  • Develop, test, and deploy statistical models, machine learning models, and analytical frameworks.
  • Apply techniques such as regression, classification, clustering, forecasting, and optimisation.
  • Ensure models are explainable, reliable, and aligned with business objectives.

Business Problem Framing

  • Partner with stakeholders to define analytical problems, hypotheses, and success criteria.
  • Translate ambiguous business questions into well-structured analytical approaches.
  • Identify key drivers, risks, and opportunities through data exploration and hypothesis testing.

Generative AI & Unstructured Data

  • Ability to work with unstructured data and apply NLP and LLMbased techniques to solve complex business problems.
  • Handson experience with Generative AI approaches, including prompt engineering, retrievalaugmented generation (RAG), and evaluation of LLM outputs for accuracy, bias and business relevance.
  • Strong understanding of how GenAI and LLM solutions are designed and integrated, and ability to partner with engineering teams to deliver scalable, governed AI solutions.

Data Exploration & Feature Engineering

  • Perform exploratory data analysis to uncover patterns, trends, and anomalies.
  • Engineer features from structured and unstructured data sources.
  • Assess data quality, bias, and limitations in analytical outputs.

Model Validation & Operationalisation

  • Validate model performance using appropriate metrics and testing approaches.
  • Collaborate with data engineering and BI teams to operationalise models and insights.
  • Monitor model performance over time and recalibrate as needed.

Communication & Storytelling

  • Communicate findings, insights, and recommendations to technical and non-technical audiences.
  • Translate complex analytical results into clear, actionable business narratives.
  • Support decision-making with scenario analysis and impact assessments.

Continuous Improvement & Innovation

  • Stay current with evolving data science methods, tools, and industry trends.
  • Identify opportunities to apply advanced analytics and AI to new business problems.
  • Promote analytical best practices across the organisation.

Education Qualifications

  • Bachelor’s Degree in Data Science, Statistics, Mathematics, Computer Science, or related field
  • Master’s Degree or PhD preferred

Experience Qualifications

  • Typically 8+ years of experience in data science, advanced analytics, or applied statistics
  • Hands-on experience with machine learning and statistical modelling techniques
  • Experience working with large, complex datasets in an enterprise environment
  • Experience partnering with business teams to drive measurable outcomes

Skills and Abilities

  • Strong proficiency in Python, R, or similar analytical programming languages
  • Strong foundation in statistics and machine learning
  • Ability to frame and solve ambiguous business problems
  • Experience balancing model sophistication with interpretability
  • Strong critical thinking and problem-solving skills
  • Ability to communicate complex concepts clearly and effectively
  • Strong collaboration and stakeholder engagement skills
  • Commitment to high professional and ethical standards

Licenses and Certifications (preferred)

  • Microsoft Certified: Azure Data Scientist Associate (DP‑100) or equivalent 
  • AWS Certified Machine Learning-Specialty or equivalent cloud ML certification
  • Google Cloud Professional Machine Learning Engineer 
  • Certified Analytics Professional (CAP/CAP‑X) by INFORMS preferred 
  • TensorFlow or advanced machine learning certifications a plus

Travel Requirements

  • Minimal Travel Required

Work Environment:

  • Work in a clean, pleasant, and comfortable office work setting. The work environment characteristics described here are representative of those an employee encounters while performing the essential functions of this job. Reasonable accommodations may be made to enable persons with disabilities to perform the essential functions.
  • This position is 100% in office.

Please Note: TriNet reserves the right to change or modify job duties and assignments at any time. The above job description is not all encompassing. Position functions and qualifications may vary depending on business necessity.  

TriNet is an Equal Opportunity Employer and does not discriminate against applicants based on race, religion, colour, disability, medical condition, legally protected genetic information, national origin, gender, sexual orientation, marital status, gender identity or expression, sex (including pregnancy, childbirth or related medical conditions), age, veteran status or other legally protected characteristics. Any applicant with a mental or physical disability who requires an accommodation during the application process should contact [email protected] to request such an accommodation.

Skills Required

  • Bachelor's degree in Data Science, Statistics, Mathematics, Computer Science, or related field
  • Master's degree or PhD
  • Typically 8+ years of experience in data science, advanced analytics, or applied statistics
  • Hands-on experience with machine learning and statistical modelling techniques
  • Experience working with large, complex datasets in an enterprise environment
  • Experience partnering with business teams to drive measurable outcomes
  • Proficiency in Python, R, or similar analytical programming languages
  • Strong foundation in statistics and machine learning
  • Experience with unstructured data, NLP, LLMs, Generative AI, prompt engineering, and RAG
  • Experience validating, monitoring, and recalibrating models over time
  • Experience operationalizing models and collaborating with data engineering and BI teams
  • Strong communication, storytelling, stakeholder engagement and problem-framing skills
  • Certifications such as Azure Data Scientist (DP-100), AWS ML Specialty, Google Cloud ML Engineer, CAP, or TensorFlow certifications

TriNet Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about TriNet and has not been reviewed or approved by TriNet.

  • Healthcare Strength Access to major national and regional carriers (e.g., Aetna, Kaiser, select Blue plans, and UnitedHealthcare in many states) and multiple plan designs underpin strong health coverage. Consolidated enrollment tools and recognizable networks help many teams view total rewards favorably.
  • Retirement Support A TriNet-sponsored multiple-employer 401(k) administered with Empower simplifies setup and payroll integration. Fiduciary and administrative responsibilities handled by the provider add tangible value to retirement offerings.
  • Flexible Benefits A broad menu spans medical, dental, vision, life/disability, FSA/HSA, EAP, commuter, and other voluntary options with side-by-side plan comparisons and open-enrollment support. Access to add-ons like telemedicine and wellness perks in one platform expands choice for varied workforce needs.

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The Company
HQ: Dublin, California
4,405 Employees

What We Do

TriNet (NYSE: TNET) provides small and medium-size businesses (SMBs) with full-service HR solutions tailored by industry. To free SMBs from HR complexities, TriNet offers access to human capital expertise, benefits, risk mitigation and compliance, payroll and real-time technology. From Main Street to Wall Street, TriNet empowers SMBs to focus on what matters most—growing their business.

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