Hearst Television Inc

Director, Quantitative Analytics

Hearst Television Inc • $130K — $160K *
Finance & Insurance
8 - 10 years of experience
Job Overview by Ladders

Qualifications

  • 10+ years in quantitative modeling, forecasting, or asset valuation, with 4+ years leading technical teams.
  • Advanced degree in Statistics, Mathematics, Economics, Data Science, Actuarial Science, Engineering, Finance, or related field.
  • Significant experience leading quantitative analysis and statistical modeling in a data-intensive environment.
  • Proficiency in predictive modeling, regression, machine learning, and statistical analysis with large datasets.
  • Fluency in programming tools such as Python, R, or SQL.

Responsibilities

  • Oversee forecasting methodologies, including assumptions and model outputs.
  • Own the entire residual value modeling lifecycle from data ingestion to monitoring.
  • Establish a formal model governance framework for validation and auditability.
  • Set the quantitative analytics strategy for various analytical solutions across North America.
  • Partner with Editorial teams for controlled and auditable model outputs and market insights.

Benefits

  • Strong focus on professional development and technical coaching for team members.
  • Collaborative work environment across data science, product, and editorial teams.
  • Engagement with senior leadership and clients to enhance analytical understanding.
  • Integration of sound business judgment with rigor in analytical processes.
Full Job Description
Job Description

The Director of Quantitative Analytics will lead the development, enhancement, validation, and governance of Black Book's quantitative models, analytical methodologies, and data-driven valuation solutions across North America. The role will strengthen the connection between statistical science, market data, expert valuation knowledge, and client needs to ensure that Black Book's outputs are accurate, explainable, scalable, and commercially relevant.

This leader will work across Data Science, Product, Editorial, Market Insights, and Commercial teams. The position is accountable for establishing disciplined model lifecycle practices, improving analytical depth, developing team capability, and translating complex analysis into clear recommendations for executives, clients, and industry stakeholders.
The Black Book Approach

Black Book combines proprietary market data, predictive modelling, analyst and editorial expertise, and ongoing market observation to produce trusted vehicle values and forward-looking forecasts. The Director will help ensure that the science and the professional judgement behind each valuation are integrated through a transparent, documented, and repeatable process.

Responsibilities

Key Responsibilities
  • Oversee residual-value, wholesale, retail, trade, portfolio, and market forecasting methodologies, including segmentation, assumptions, data lineage, and model outputs.
  • Own the end-to-end residual value modeling lifecycle: data ingestion, feature development, model specification, back-testing, calibration, publication, and post-publication monitoring.
  • Establish a formal model governance framework: documented methodology, version control, change logs, challenger models, independent validation, and a clear audit trail for every published forecast.
  • Set the quantitative analytics strategy for North American valuation, forecasting, portfolio analysis, market intelligence, and client-specific analytical solutions.
  • Establish and maintain model lifecycle standards covering development, independent validation, back-testing, approvals, version control, monitoring, change management, and retirement.
  • Partner with Editorial teams to ensure model outputs, market observations, constraints, and expert review are reconciled through a controlled and auditable process.
  • Develop performance monitoring and risk reporting using measures such as MAE, forecast-to-actual variance, stability, responsiveness, and back-testing results.
  • Translate macroeconomic inputs - interest rates, new vehicle supply and incentives, fuel and energy prices, tariffs, EV adoption curves, off-lease volume - into forward-looking residual assumptions and scenario sets.
  • Lead scenario analysis and stress testing to assess the effects of economic conditions, interest rates, affordability, supply, demand, incentives, currency, EV adoption, and other market changes.
  • Ensure Canadian and U.S. models are appropriately governed and aligned while preserving the distinct data, market, and process requirements of each country.
  • Collaborate with Data Operations to improve data quality, automation, data lineage, reproducibility, and the scalability of analytical processes.
  • Translate complex methodologies and analytical findings into clear, practical recommendations for senior leadership, Product, Sales, clients, and other non-technical audiences.
  • Participate in customer discussions to explain methodologies, assumptions, outputs, market insights, and limitations, while gathering feedback to improve solutions.
  • Support the Model Governance Committee and Residual Values Steering Committee with documentation, validation results, approval recommendations, exception analysis, and performance reporting.
  • Build, coach, and develop a high-performing team of quantitative analysts, modelers, and analytical specialists, creating succession depth and consistent technical standards.
Primary Areas of Focus

Area

Role Contribution

Valuation and forecasting

Residual values, wholesale and retail values, trade values, portfolio reforecasting, market trends, and client-specific studies.

Model governance

Lifecycle controls, documentation, assumptions, validation, explainability, approvals, monitoring, auditability, and change management.

Market intelligence

Economic and automotive market analysis, including supply, demand, affordability, incentives, EV and hybrid adoption, and new-market entrants.

Client confidence

Clear communication of methodologies, transparent responses to questions, and analytical support that strengthens trust in Black Book data and valuations.

Team capability

Technical coaching, quality standards, succession planning, and collaboration across Canadian and U.S. analytical teams.

Qualifications

Qualifications and Experience
  • 10+ years in quantitative modeling, forecasting, or asset valuation, with 4+ years leading technical teams.
  • Advanced degree in Statistics, Mathematics, Economics, Data Science, Actuarial Science, Engineering, Finance, or a related quantitative discipline.
  • Significant experience leading quantitative analysis, statistical modelling, forecasting, data science, valuation, risk, or financial analytics in a data-intensive environment.
  • Demonstrated experience managing and developing analytical or quantitative professionals.
  • Expert knowledge of predictive modelling, regression, machine learning, forecasting, model validation, performance monitoring, and statistical analysis.
  • Experience working with large, complex, and longitudinal datasets, including data preparation, feature development, data quality assessment, and reproducible analytical workflows.
  • Fluency in tools and programming languages such as Python, R, SQL, or equivalent technologies.
  • Experience establishing model governance, documentation, controls, validation, auditability, and change-management practices.
  • Strong written and verbal communication skills, with the ability to explain technical concepts, assumptions, limitations, and recommendations to non-technical audiences.
  • Experience in automotive, financial services, credit risk, asset valuation, insurance, economics, or another industry involving forecasting and market-sensitive decisions is preferred.
  • Demonstrated experience with model risk management and governance standards (e.g., SR 11-7 or equivalent) in a regulated or client-audited environment.

Leadership Capabilities
  • Combines technical depth with sound business judgement and a clear understanding of client and commercial requirements.
  • Creates accountability for analytical quality, documentation, deadlines, and follow-through across functions.
  • Builds trust through transparency, evidence-based recommendations, and clear communication of uncertainty and limitations.
  • Can operate strategically while remaining close enough to the work to challenge assumptions and resolve complex issues.
  • Develops talent, raises analytical standards, and builds a sustainable bench of quantitative expertise.
  • Works effectively across Canadian and U.S. teams while respecting differences in market conditions, data, methodology, and operating processes.
Measures of Success
  • Improved accuracy, stability, responsiveness, and explainability of Black Book models and valuation outputs.
  • A consistent and auditable model governance framework adopted across relevant quantitative and valuation processes.
  • Clear documentation of model assumptions, data sources, methodologies, limitations, approvals, and performance results.
  • Greater confidence among clients and internal stakeholders in Black Book's valuation and analytical capabilities.
  • Timely delivery of high-quality forecasting, portfolio, market, and client-specific analytical solutions.
  • Improved collaboration between Data Science, Residual Values, Product, Engineering, Data Operations, Market Insights, and Commercial teams.
  • A stronger quantitative team with defined standards, effective coaching, and succession depth.
Working Relationships

The Director of Quantitative Analysis will work closely with senior leadership and cross-functional partners across Data Science, Editorial, Product, Data Operations, Market Insights, and Sales. The role will also engage directly with clients and industry stakeholders when quantitative methodologies, valuation outputs, market conditions, or analytical recommendations require explanation and discussion.
Role Purpose

This role is central to strengthening Black Book's analytical foundation and reinforcing the credibility of its valuation and forecasting solutions. The successful candidate will help Black Book scale its quantitative capabilities while preserving the combination of rigorous data science, market understanding, and expert judgement that clients rely on.

About Hearst Television Inc

Hearst Television Inc is a broadcasting company that owns and operates 33 television stations in the United States. The company was founded in 1948 and is headquartered in New York City. Hearst Television is a subsidiary of Hearst Communications, which is one of the largest diversified media and information companies in the world. The company's stations reach approximately 21 million households across the United States, making it one of the largest television station groups in the country. Hearst Television's stations are affiliated with major broadcast networks such as ABC, NBC, CBS, and FOX.
Learn more about Hearst Television Inc
Size
3,500 employees
Industry
Founded
1997

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