Quantitative Modeler, ALM & Insurance Analytics

Talcott Financial Group, Ltd.

  • Charlotte, NC
  • 27 days ago
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    Skills

    • Actuarial Skillsunmatched
    • Analysis Skillsunmatched
    • Application Programming Interface (API)unmatched
    • Artificial Intelligence (AI)unmatched
    • Best Practicesunmatched
    • Business Modelunmatched
    • Business Solutionsunmatched
    • Cisco ASA (Adaptive Security Appliance)unmatched
    • Cloud Computingunmatched
    • Code Reviewsunmatched
    • Communication Skillsunmatched
    • Continuous Deployment/Deliveryunmatched
    • Continuous Integrationunmatched
    • Data Setsunmatched
    • Delivery Managementunmatched
    • Detail Orientedunmatched
    • Documentationunmatched
    • Financeunmatched
    • Fixed Income Investmentsunmatched
    • Flexible Spending Accountsunmatched
    • Forecastingunmatched
    • Insuranceunmatched
    • Machine Learningunmatched
    • Mathematicsunmatched
    • Microsoft Windows Azureunmatched
    • Model Validationunmatched
    • Modeling Languagesunmatched
    • Problem Solving Skillsunmatched
    • Process Improvementunmatched
    • Product Pricingunmatched
    • Project Trackingunmatched
    • Python Programming/Scripting Languageunmatched
    • Quality Assuranceunmatched
    • Quantitative Analysisunmatched
    • Reconciliationunmatched
    • Regulationsunmatched
    • Riskunmatched
    • Software Developmentunmatched
    • Source Code/Configuration Management (SCM)unmatched
    • Time Managementunmatched
    • Use Casesunmatched

    Description

    Overview:

    Our Quantitative Modeling Analyst position will support the development of hands-on artificial intelligence (AI) engineering strategies that will strengthen the organization's asset and liability modeling capabilities. The strategy will allow us to modernize how Talcott values, projects, manages, and explains its wide variety of asset intensive liabilities. The Quantitative Analyst will assist in the development of self-service applications including chat experiences for investments, ALM, finance, and ERM users while remaining grounded in fixed income, derivatives, and ALM analytics. This opportunity will be a part a newly formed "AI Lab" within the actuarial department to accelerate the development of AI-driven business applications, asset modeling, and engineering to deliver generative and agentic AI capabilities that accelerate model production, automate documentation and controls.

    Responsibilities:

    Develop asset and liability models that support self-service ALM forecasting for Actuarial, Finance, and Risk users, including prepayment, credit migration, and default modeling.

    Develop optimization approaches for SAA, hedging, capital efficiency, and surplus generation

    Implement anomaly detection for valuation QA and model validation.

    Build and maintain Python services integrating AXIS, KRM, QuantLib, and internal platforms

    Follow best practices in version control, CI/CD (continuous integration/continuous deployment) and code review

    Contribute to validation, controls and reconciliation frameworks.

    Build self-service chat tools, LLM (large language model) based auto-documentation for governance and audit, AI-assisted reconciliation and anomaly explanation, and RAG (retrieval-augmented generation) solutions grounded in actuarial methods, regulatory guidance, and prior results.

    Partner with Risk, Compliance, and IT to establish AI governance, safety, validation, and human-in-the-loop controls.

    Stay up to date with technological advancement in AI tools and applications, and continuous development of potential use cases for the company.

    Qualifications:

    Degree in quantitative finance or actuarial designation

    Minimum of 1 year of experience with quantitative asset modeling and AI applications

    Strong mathematical and analytical skills with working knowledge of fixed income asset classes, pricing models, and derivativesProgress toward an ASA or FSA is a plusDemonstrated experience applying quantitative models to business challenges

    Hands-on exposure to Generative AI, agentic workflows, chat assistants, and machine learning

    Technical experience requirements: Python, NumPy, pandas, Fast API, Azure cloud services

    Demonstrated ability to take ownership of processes and drive improvements independently

    Experience providing project oversight or leading components of projects is a plus

    Strong communication skills, with the ability to translate complex analysis into clear, actionable insights for senior stakeholders

    Attention to detail and ability to manage multiple deliverables

    Strong analytical and problem-solving skills, with demonstrated experience working with complex datasets and reporting frameworksResults-oriented with a demonstrated ability to work under tight deadlines in a high-performance environment.

    Numbers & Facts

    LocationCharlotte, NC

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