... Bayesian optimization and active learning, accounting for operational variabilities and constraints. • Select and maintain surrogate models for acquisition, using model uncertainty to drive the ...
... Bayesian optimization and active learning, accounting for operational variabilities and constraints. • Select and maintain surrogate models for acquisition, using model uncertainty to drive the ...
Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints. * Select and maintain surrogate models ...
Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints. * Select and maintain surrogate models ...
Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints. * Select and maintain surrogate models ...
Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints. * Select and maintain surrogate models ...
Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints. * Select and maintain surrogate models ...
Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints. * Select and maintain surrogate models ...
Familiarity with active learning, Bayesian optimization, and related techniques. * Knowledge of ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment ...
Familiarity with active learning, Bayesian optimization, and related techniques. * Knowledge of ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment ...
Familiarity with active learning, Bayesian optimization, and related techniques. * Knowledge of ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment ...
Familiarity with active learning, Bayesian optimization, and related techniques. * Knowledge of ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment ...
Familiarity with active learning, Bayesian optimization, and related techniques. * Knowledge of ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment ...
Familiarity with active learning, Bayesian optimization, and related techniques. * Knowledge of ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment ...
Data Scientist - w2
Columbus, OH · On-site
... optimization and customer value delivery. You will also enable stakeholders with actionable ... Understanding of statistical methods and skills such as Bayesian Networks Inference, linear and non ...
Quick apply
Data Scientist - w2
Columbus, OH · On-site
... optimization and customer value delivery. You will also enable stakeholders with actionable ... Understanding of statistical methods and skills such as Bayesian Networks Inference, linear and non ...
Data Scientist
Columbus, OH · On-site
... optimization and customer value delivery. - Translate analytical findings into intuitive data ... Preferred Skills - Knowledge of machine learning methodologies, predictive modeling, and Bayesian ...
Data Scientist
Columbus, OH · On-site
... optimization and customer value delivery. - Translate analytical findings into intuitive data ... Preferred Skills - Knowledge of machine learning methodologies, predictive modeling, and Bayesian ...
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Job description
Hexion Inc. is a company that pushes boundaries and creates impactful solutions through science. They are seeking an Applied ML Scientist to lead optimization and active-learning campaigns, collaborating with R&D and manufacturing to enhance processes and drive innovation.
Responsibilities:
• Lead the design and execution of optimization and active-learning campaigns across chemistry, formulation, and process development.
• Collaborate with R&D and manufacturing on framing optimization problems with design spaces, decision variables, objectives, and hard and soft constraints.
• Design and coordinate sequential experiment campaigns using Bayesian optimization and active learning, accounting for operational variabilities and constraints.
• Select and maintain surrogate models for acquisition, using model uncertainty to drive the search and respecting each model's domain of validity.
• Drive closed-loop optimization that connects surrogate models to experimentation, with emphasis on decision quality, exploration versus exploitation, and actionable recommendations.
• Partner with ML engineers, software engineers, and process engineers to deploy and monitor optimization systems.
• Explore and adopt emerging ML methods, including LLM and agentic approaches, to advance optimization.
• Communicate methods, results, and their limitations clearly to technical and non-technical audiences.
Qualifications:
Required:
• Bachelor's degree in Computer Science, Data Science, Statistics, Operations Research, or a related field, with substantial relevant experience in ML modeling or optimization experience for chemistry, formulation, process, or manufacturing problems.
• 7+ years experience.
• Demonstrated expertise in Bayesian optimization and Gaussian processes, including kernels, acquisition functions, and batch, multi-objective, and constrained settings.
• Experience designing and running experiment campaigns or closed-loop optimization.
• Experience in applied statistics and uncertainty quantification, with emphasis on calibrated posteriors that drive acquisition.
• Strong Python skills and experience with mainstream Python-based ML and Bayesian optimization frameworks and tools.
• Active use of AI-assisted coding and other AI tools in daily work, with familiarity with emerging ML methods including LLM and agentic approaches.
• Strong communication, collaboration, and stakeholder management skills for working with R&D, manufacturing, and business teams.
Preferred:
• Master's degree in Computer Science, Data Science, Statistics, Operations Research, or a related field.
• Experience with active learning and physics-informed approaches for optimization in chemical synthesis, formulation, or process development.
• Experience working with manufacturing, process, quality, or plant data, including issues such as batch-to-batch variability, raw-material variability, model drift, and changing operating conditions.
• Familiar with ML engineering core tasks and techniques, such as data and optimization pipelines, model deployment, and MLOps.
• Knowledge of chemistry ML core areas such as cheminformatics, molecular representation, predictive modeling, and chemistry foundation models.
Company:
Based in Columbus, Ohio, Hexion Inc. is a leading global producer of adhesives and performance materials. Founded in , the company is headquartered in Columbus, USA, with a team of 1001-5000 employees. The company is currently Late Stage.
About Hexion
Sourced by ZipRecruiter
Industry
Chemical manufacturing
Company size
10,000+ Employees
Headquarters location
Columbus, OH, US
Year founded
1899