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Statistical Engineering Jobs in Powell, OH (NOW HIRING)

Develop and implement statistical, predictive, and machine learning models . * Perform data cleaning, transformation, feature engineering, and exploratory data analysis. * Develop data visualizations ...

Sr Device Assembly Engineer

New Albany, OH · On-site

$100K - $137K/yr

Analyze engineering data using statistical methods to support design acceptance, process capability, and product performance. * Support design verification, design validation, and engineering ...

Engineer, Quality

New Albany, OH · On-site

$69K - $89K/yr

... Quality Engineering, Quality Assurance, or Continuous Improvement within manufacturing. (Preferred) * 1-3 years familiarity with cGMPs, statistical process control (SPC), and quality system ...

Analyze engineering data using statistical methods to support design acceptance, process capability, and product performance. * Support design verification, design validation, and engineering ...

Engineer, Quality

New Albany, OH · On-site

$69K - $89K/yr

... Quality Engineering, Quality Assurance, or Continuous Improvement within manufacturing. (Preferred) * 1-3 years familiarity with cGMPs, statistical process control (SPC), and quality system ...

QUALITY ENGINEER

Columbus, OH · On-site

$69K - $89K/yr

Analysis of data using statistical control principles. REQUIREMENTS * B.S. degree in related engineering discipline or experience equivalent required (expert knowledge acquired 5+ years) * 3+ years ...

You will work on developing predictive models, conducting statistical analysis, and creating data ... The Opportunity : The AI Solutions Engineering Delivery Lead will oversee multiple ...

Innovation Lab Fall 2026 Intern II

Delaware, OH · On-site

$16 - $20.75/hr

Must be pursuing a degree in Engineering, Physics, Data Science, Statistics, Computer Science, or a related field. * Strong analytical, critical thinking, and problem-solving skills * High attention ...

New

Quality Engineer

Columbus, OH · On-site

$75K - $95K/yr

Perform statistical analyses to support validation, process capability, investigations, and quality ... Bachelor's degree in Engineering, Quality, or a related technical field and 5 years of experience ...

Quality Engineer

Columbus, OH · On-site

$75K - $95K/yr

Perform statistical analyses to support validation, process capability, investigations, and quality ... Bachelor's degree in Engineering, Quality, or a related technical field and 5 years of experience ...

Innovation Lab Fall 2026 Intern I

Delaware, OH · On-site

$16 - $20.75/hr

Must be pursuing a degree in Engineering, Physics, Data Science, Statistics, Computer Science, or a related field. * Strong analytical, critical thinking, and problem-solving skills * High attention ...

New

Showing results 41-60

Statistical Engineering information

What is statistical engineering?

Statistical engineering is an interdisciplinary field that focuses on the integration and application of statistical methods and principles to solve complex, large-scale problems in science, business, and engineering. It involves designing data collection processes, analyzing and interpreting data, and implementing statistical solutions within larger systems. Statistical engineers often work on projects that require collaboration with other engineering disciplines, using statistics as a foundational tool to drive decision-making and innovation.

How does a statistical engineer typically collaborate with cross-functional teams to implement data-driven solutions?

Statistical Engineers frequently work alongside data scientists, software engineers, and business analysts to design and implement robust data-driven solutions. They are responsible for translating complex statistical models into actionable insights and ensuring that these models are integrated effectively within existing systems. Collaboration often involves regular meetings to align on project goals, sharing progress updates, and troubleshooting technical challenges together. This interdisciplinary teamwork is essential for ensuring that statistical methodologies are not only theoretically sound but also practically applicable to real-world business problems.

What are the key skills and qualifications needed to thrive as a statistical engineer, and why are they important?

To thrive as a Statistical Engineer, you need strong quantitative analysis skills, a background in statistics or mathematics, and often a relevant degree such as in engineering or applied statistics. Proficiency with statistical software (e.g., R, SAS, Python), data management systems, and sometimes Six Sigma certification is typically required. Critical thinking, problem-solving, and clear communication are crucial soft skills for interpreting data and collaborating with multidisciplinary teams. These skills ensure accurate data-driven decisions, efficient process improvements, and effective solutions to complex engineering challenges.

What is the difference between Statistical Engineering vs Data Scientist?

AspectStatistical EngineeringData Scientist
Required credentialsStatistics, Data Analysis, EngineeringStatistics, Computer Science, Data Analysis
Work environmentManufacturing, R&D, Engineering teamsBusiness, Tech, Research sectors
Employer usageOptimizing processes, designing experimentsBuilding models, insights, predictive analytics

Statistical Engineering focuses on applying statistical methods to improve engineering processes and product development, often within manufacturing or R&D settings. Data Scientists analyze large datasets to extract insights, build predictive models, and support business decisions. While both roles require strong statistical skills, Statistical Engineering emphasizes process optimization and experimental design, whereas Data Scientists focus on data-driven insights across diverse industries.

What do statistical engineers do?

Statistical engineers develop and implement statistical models and methods to analyze complex data, often focusing on process improvement and quality control. They use tools like statistical software and programming languages such as R or Python and collaborate with data scientists and engineers to optimize systems and decision-making processes.

What are popular job titles related to Statistical Engineering jobs in Powell, OH?

For Statistical Engineering jobs in Powell, OH, the most frequently searched job titles are:

What cities near Powell, OH are hiring for Statistical Engineering jobs?

Cities near Powell, OH with the most Statistical Engineering job openings:

Director of Software Engineering - Content and Experimentation

JPMorgan Chase & Co.

Columbus, OH • On-site

$200 - $250/hr

Other

Re-posted yesterday


JPMorgan Chase & Co. rating

7.9

Company rating: 7.9 out of 10

Based on 500 frontline employees who took The Breakroom Quiz

77th of 175 rated banks


Job description

If you are a software engineering leader ready to take the reins and drive impact, we’ve got an opportunity just for you.

As a Director of Software Engineering at JPMorganChase within the Digital Technology team, you lead a technical area and drive impact within teams, technologies, and projects across departments. Utilize your in-depth knowledge of software, applications, technical processes, and product management to drive multiple complex projects and initiatives, while serving as a primary decision maker for your teams and be a driver of innovation and solution delivery.

Job Responsibilities
  • Leads technology and process implementations to achieve functional technology objectives
  • Accountable for decisions that influence teams’ resources, budget, tactical operations, and the execution and implementation of processes and procedures
  • Sets direction and governance for agentic AI-enabled engineering and SDLC/TLM automation within a technical area to drive measurable improvements in speed, quality, and operational outcomes (e.g., AI-orchestrated delivery workflows, release readiness controls, automated test modernization, and incident triage acceleration), while establishing guardrails for validation, security, resiliency, traceability, and reuse across teams
  • Applies knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation and support capacity unlock initiatives at scale
  • Carries governance accountability for coding decisions, control obligations, and measures of success such as cost of ownership, maintainability, and portfolio operations
  • Delivers technical solutions that can be leveraged across multiple businesses and domains
  • Influences peer leaders and senior stakeholders across the business, product, and technology teams
  • Owns the engineering strategy and execution for a Content and Experimentation platform, enabling scalable content delivery, targeting, personalization, and rapid iteration via experimentation
  • Partners with Product, Design, Data/Analytics, and Marketing stakeholders to define platform roadmaps, SLAs/SLOs, and measurable outcomes (e.g., experimentation velocity, conversion impact, platform reliability)
  • Establishes platform governance for experimentation (guardrails, statistical rigor, auditability, and policy-aligned controls), including standard patterns for feature flags, A/B/n testing, and rollout strategies
  • Drives cloud-native delivery on AWS for the platform (e.g., reliability, performance, cost optimization, observability, incident response), with strong focus on secure-by-design and reusable platform capabilities
Required qualifications, capabilities, and skills
  • Formal training or certification on software engineering concepts and 10+ years applied experience. In addition, 5+ years of experience leading technologists to manage, anticipate and solve complex technical items within your domain of expertise
  • Experience developing or leading cross‑functional teams of technologists
  • Experience with hiring, developing, and recognizing talent
  • Experience leading adoption of agentic AI-enabled engineering practices (using enterprise‑authorized tools within the work environment) across teams, including defining operating expectations (human‑in‑the‑loop validation, quality gates), measuring outcomes, and ensuring secure handling of sensitive inputs/outputs
  • Strong understanding of responsible AI use and control expectations in engineering workflows, including data sensitivity, resiliency/security implications, and governance; ability to influence leaders on safe scaling patterns and reuse
  • Practical cloud native experience
  • Expertise in Computer Science, Computer Engineering, Mathematics, or a related technical field
  • Hands‑on leadership experience designing and operating content delivery and experimentation capabilities (e.g., feature flags, A/B testing frameworks, rollouts, targeting/personalization) in a multi‑team environment
  • Strong AWS knowledge for building and running scalable platforms (e.g., networking, compute, storage, security, observability, resiliency patterns, and cost management)
  • Experience defining platform operating models (intake, prioritization, self‑service enablement, reliability targets, runbooks, and on‑call practices) for product‑facing engineering platforms
  • Strong understanding of API‑first and event‑driven architectures to integrate content and experimentation services with downstream channels and product applications
Preferred qualifications, capabilities, and skills
  • Participate in and lead opportunities with third parties, working to understand why and how we may integrate and leverage their capabilities
  • Experience hiring top talent, growing careers, and coaching individuals and managers to higher performance
  • Experience operating software platforms
  • Strong understanding of AWS services and infrastructure
  • Experience with content management platforms (CMS) and content lifecycle concerns (authoring, workflow, governance, localization, versioning, and publishing) to support enterprise‑scale content operations
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