Senior Bayesian Risk Modeler

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November 8

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Technosylva

Artificial Intelligence ‱ SaaS ‱ B2B

<Technosylva> is a provider of AI-driven wildfire and extreme weather risk mitigation software that delivers real-time forecasting, predictive simulations, and incident management tools for electric utilities, fire agencies, and insurers. Their cloud-based products (Wildfire Analyst, Tactical Analyst, fiResponse) offer situational awareness, operational decision support, and risk quantification to help customers plan, operate, and respond to wildfire and severe weather events.

📋 Description

‱ Redesign annualized risk frameworks using Monte Carlo simulation and Bayesian models. ‱ Develop and validate probabilistic models that propagate uncertainty from various factors. ‱ Build calibrated prediction systems where stated confidence intervals accurately reflect true uncertainty. ‱ Optimize weather day selection algorithms using information-theoretic approaches. ‱ Apply extreme value theory to better characterize tail risks from rare weather events.

🎯 Requirements

‱ Education: Ph.D. in Statistics, Biostatistics, Applied Mathematics, Computational Statistics, or related quantitative fields strongly preferred. ‱ A master's degree with exceptional depth in probabilistic modeling and 10+ years of applied experience will be considered. ‱ Professional Experience: 6+ years of experience in quantitative roles requiring sophisticated statistical modeling. ‱ Proven track record of deploying probabilistic models in production environments. ‱ Experience translating research-grade statistical methods into robust, scalable, and maintainable production systems. ‱ Proven mastery of Bayesian inference methodology. ‱ Hands-on experience implementing MCMC samplers and understanding their convergence properties. ‱ Extensive experience designing and implementing Monte Carlo frameworks for uncertainty propagation. ‱ Working knowledge of copula methods for modeling dependence structures. ‱ Advanced Python skills with demonstrated ability to write clean, efficient code for complex statistical applications. ‱ Comfortable working with large-scale geospatial and time-series datasets.

đŸ–ïž Benefits

‱ Health insurance ‱ Retirement plans ‱ Paid time off ‱ Flexible work arrangements ‱ Professional development

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