AI ML Engineer Visa Sponsorship Jobs in Ohio
Ohio's AI and ML engineering market is anchored by major employers in Columbus, Cleveland, and Cincinnati, including JPMorgan Chase, Nationwide, and Battelle. The state's strong university pipeline from Ohio State and Case Western Reserve feeds a growing demand for AI ML engineers, with many roles carrying visa sponsorship.
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84.51° Overview
84.51° is a retail data science, insights and media company. We help The Kroger Co., consumer packaged goods companies, agencies, publishers and affiliates create more personalized and valuable experiences for shoppers across the path to purchase. Powered by cutting-edge science, we utilize first-party retail data from more than 62 million U.S. households sourced through the Kroger Plus loyalty card program to fuel a more customer-centric journey using 84.51° Insights, 84.51° Loyalty Marketing and our retail media advertising solution, Kroger Precision Marketing. 84.51° follows a 5‑day in‑office work schedule to support collaboration, alignment, and team connection. Join us at 84.51°!
Senior AI/ML Engineer P4368
We are seeking a highly skilled Senior AI/ML Engineer to join our AI Foundation Models team, focused on pushing the boundaries of AI capabilities through advanced reasoning, multi-step problem solving, and deep agentic systems. In this role, you will drive experimentation and rapid iteration across LLMs, deep learning, reinforcement learning, world modeling, and causal reasoning to solve complex retail problems at scale. You will own the full lifecycle of these systems—from prototyping and experimentation through production-grade deployment, optimization, and monitoring.
Responsibilities
- Design, develop, and deploy end-to-end deep reasoning and research agents capable of complex, multi-step problem solving for the retail domain
- Architect agent systems leveraging test-time compute scaling strategies to enhance reasoning quality during inference
- Develop and apply reinforcement learning techniques to improve agent reasoning capabilities and alignment; design reward functions, preference models, and human feedback pipelines for complex reasoning tasks
- Research and experiment with world modeling and causal reasoning approaches to enable agents to understand cause-effect relationships and simulate outcomes
- Lead research in model pretraining, fine-tuning, instruction tuning, and parameter-efficient methods (LoRA, adapters, QLoRA); implement novel architectures and prompting strategies across LLMs and SLMs
- Build and optimize encoder-only architectures, embedding models, and dense retrieval systems for downstream agent capabilities
- Write production-quality, scalable code for training, inference, and deployment; implement distributed training systems optimized for efficiency, memory, and latency
- Develop evaluation frameworks and benchmarking systems for reasoning quality, agent reliability, and task completion
- Collaborate with cross-functional teams including researchers, product teams, and infrastructure; mentor junior engineers
Qualifications
Education & Experience
- Masters in Computer Science, Machine Learning, Artificial Intelligence, or related field
- 1-2 years of industry or research experience in deep learning
Required Skills
- Hands-on experience building agentic systems, multi-step reasoning systems, or research agents using LLMs, with strong understanding of agentic design patterns including planning, tool use, memory, RAG, and self-reflection
- Proven experience with RLHF, RLEF, reward modeling, PPO, DPO, or related alignment and RL techniques
- Familiarity with world modeling, causal inference, and causal reasoning frameworks applied to decision-making and planning
- Expert proficiency in PyTorch with deep experience in transformer architectures and modern LLM/SLM implementations; familiarity with distributed training frameworks (DeepSpeed, FairScale, Megatron)
- Experience in pretraining large models including data preprocessing, tokenization, training dynamics, fine-tuning, and parameter-efficient methods
- Knowledge of encoder-only architectures, masked language modeling, embedding models, and dense retrieval
- Clean, efficient, scalable Python coding skills with knowledge of model quantization, pruning, distillation, and compression techniques
- Experience with experiment tracking (MLflow), deployment pipelines, cloud platforms (GCP, Azure), and containerization (Docker, Kubernetes)
- Strong problem-solving skills, ability to work independently on ambiguous problems, and excellent communication skills
Preferred Skills
- Experience with multimodal models, cross-modal reasoning, and vision-language agents
- Familiarity with agent orchestration tools (LangChain, LangGraph, AutoGen, or custom frameworks)
- Contributions to open-source deep learning or agentic AI projects
- Experience with hardware optimization (GPUs, TPUs), mixed-precision training, and synthetic data generation
- Background in NLP applications, information retrieval, or knowledge-intensive tasks
Pay Transparency And Benefits
- The stated salary range represents the entire span applicable across all geographic markets from lowest to highest. Actual salary offers will be determined by multiple factors including but not limited to geographic location, relevant experience, knowledge, skills, other job-related qualifications, and alignment with market data and cost of labor. In addition to salary, this position is also eligible for variable compensation.
- Below is a list of some of the benefits we offer our associates:
- Health: Medical: with competitive plan designs and support for self-care, wellness and mental health. Dental: with in-network and out-of-network benefit. Vision: with in-network and out-of-network benefit.
- Wealth: 401(k) with Roth option and matching contribution. Health Savings Account with matching contribution (requires participation in qualifying medical plan). AD&D and supplemental insurance options to help ensure additional protection for you.
- Happiness: Paid time off with flexibility to meet your life needs, including 5 weeks of vacation time, 7 health and wellness days, 3 floating holidays, as well as 6 company-paid holidays per year. Paid leave for maternity, paternity and family care instances.
Pay Range $98,000—$169,050 USD

84.51° Overview
84.51° is a retail data science, insights and media company. We help The Kroger Co., consumer packaged goods companies, agencies, publishers and affiliates create more personalized and valuable experiences for shoppers across the path to purchase. Powered by cutting-edge science, we utilize first-party retail data from more than 62 million U.S. households sourced through the Kroger Plus loyalty card program to fuel a more customer-centric journey using 84.51° Insights, 84.51° Loyalty Marketing and our retail media advertising solution, Kroger Precision Marketing. 84.51° follows a 5‑day in‑office work schedule to support collaboration, alignment, and team connection. Join us at 84.51°!
Senior AI/ML Engineer P4368
We are seeking a highly skilled Senior AI/ML Engineer to join our AI Foundation Models team, focused on pushing the boundaries of AI capabilities through advanced reasoning, multi-step problem solving, and deep agentic systems. In this role, you will drive experimentation and rapid iteration across LLMs, deep learning, reinforcement learning, world modeling, and causal reasoning to solve complex retail problems at scale. You will own the full lifecycle of these systems—from prototyping and experimentation through production-grade deployment, optimization, and monitoring.
Responsibilities
- Design, develop, and deploy end-to-end deep reasoning and research agents capable of complex, multi-step problem solving for the retail domain
- Architect agent systems leveraging test-time compute scaling strategies to enhance reasoning quality during inference
- Develop and apply reinforcement learning techniques to improve agent reasoning capabilities and alignment; design reward functions, preference models, and human feedback pipelines for complex reasoning tasks
- Research and experiment with world modeling and causal reasoning approaches to enable agents to understand cause-effect relationships and simulate outcomes
- Lead research in model pretraining, fine-tuning, instruction tuning, and parameter-efficient methods (LoRA, adapters, QLoRA); implement novel architectures and prompting strategies across LLMs and SLMs
- Build and optimize encoder-only architectures, embedding models, and dense retrieval systems for downstream agent capabilities
- Write production-quality, scalable code for training, inference, and deployment; implement distributed training systems optimized for efficiency, memory, and latency
- Develop evaluation frameworks and benchmarking systems for reasoning quality, agent reliability, and task completion
- Collaborate with cross-functional teams including researchers, product teams, and infrastructure; mentor junior engineers
Qualifications
Education & Experience
- Masters in Computer Science, Machine Learning, Artificial Intelligence, or related field
- 1-2 years of industry or research experience in deep learning
Required Skills
- Hands-on experience building agentic systems, multi-step reasoning systems, or research agents using LLMs, with strong understanding of agentic design patterns including planning, tool use, memory, RAG, and self-reflection
- Proven experience with RLHF, RLEF, reward modeling, PPO, DPO, or related alignment and RL techniques
- Familiarity with world modeling, causal inference, and causal reasoning frameworks applied to decision-making and planning
- Expert proficiency in PyTorch with deep experience in transformer architectures and modern LLM/SLM implementations; familiarity with distributed training frameworks (DeepSpeed, FairScale, Megatron)
- Experience in pretraining large models including data preprocessing, tokenization, training dynamics, fine-tuning, and parameter-efficient methods
- Knowledge of encoder-only architectures, masked language modeling, embedding models, and dense retrieval
- Clean, efficient, scalable Python coding skills with knowledge of model quantization, pruning, distillation, and compression techniques
- Experience with experiment tracking (MLflow), deployment pipelines, cloud platforms (GCP, Azure), and containerization (Docker, Kubernetes)
- Strong problem-solving skills, ability to work independently on ambiguous problems, and excellent communication skills
Preferred Skills
- Experience with multimodal models, cross-modal reasoning, and vision-language agents
- Familiarity with agent orchestration tools (LangChain, LangGraph, AutoGen, or custom frameworks)
- Contributions to open-source deep learning or agentic AI projects
- Experience with hardware optimization (GPUs, TPUs), mixed-precision training, and synthetic data generation
- Background in NLP applications, information retrieval, or knowledge-intensive tasks
Pay Transparency And Benefits
- The stated salary range represents the entire span applicable across all geographic markets from lowest to highest. Actual salary offers will be determined by multiple factors including but not limited to geographic location, relevant experience, knowledge, skills, other job-related qualifications, and alignment with market data and cost of labor. In addition to salary, this position is also eligible for variable compensation.
- Below is a list of some of the benefits we offer our associates:
- Health: Medical: with competitive plan designs and support for self-care, wellness and mental health. Dental: with in-network and out-of-network benefit. Vision: with in-network and out-of-network benefit.
- Wealth: 401(k) with Roth option and matching contribution. Health Savings Account with matching contribution (requires participation in qualifying medical plan). AD&D and supplemental insurance options to help ensure additional protection for you.
- Happiness: Paid time off with flexibility to meet your life needs, including 5 weeks of vacation time, 7 health and wellness days, 3 floating holidays, as well as 6 company-paid holidays per year. Paid leave for maternity, paternity and family care instances.
Pay Range $98,000—$169,050 USD
AI ML Engineer Job Roles in Ohio
See all 58+ AI ML Engineer Jobs in Ohio
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Search AI ML Engineer Jobs in OhioAI ML Engineer Jobs in Ohio: Frequently Asked Questions
Which companies in Ohio sponsor visas for AI ML engineers?
Several large Ohio-based employers have established H-1B sponsorship histories for AI and ML engineering roles. JPMorgan Chase in Columbus, Nationwide Insurance, and Battelle Memorial Institute are among the more active sponsors. Healthcare systems like Cleveland Clinic and technology operations at Procter and Gamble in Cincinnati also regularly hire for these roles and have sponsored work visas for international candidates.
Which visa types are most common for AI ML engineer roles in Ohio?
The H-1B is the most common visa for AI ML engineers in Ohio, as these roles typically qualify as specialty occupations requiring at least a bachelor's degree in computer science, statistics, or a related field. Candidates already in the U.S. on F-1 OPT or STEM OPT extension often transition to H-1B through employer sponsorship. The O-1A is an option for candidates with exceptional achievement, though it requires substantial documentation.
How to find ai ml engineer visa sponsorship jobs in Ohio?
Migrate Mate filters job listings specifically for visa sponsorship, making it easier to identify AI ML engineer roles in Ohio without sorting through positions that won't support international candidates. You can search by state and role type to surface relevant openings in Columbus, Cleveland, and Cincinnati. Migrate Mate's listings focus on employers with active sponsorship histories, which saves significant time during a job search.
Which cities in Ohio have the most AI ML engineer sponsorship jobs?
Columbus leads Ohio for AI ML engineering sponsorship activity, driven by its concentration of financial services firms, insurance companies, and a growing tech sector anchored by Ohio State University research. Cleveland follows, with healthcare technology at institutions like Cleveland Clinic generating consistent demand. Cincinnati has a smaller but active market, particularly through consumer goods companies and regional financial services employers.
Are there any Ohio-specific considerations for AI ML engineers seeking visa sponsorship?
Ohio's AI ML hiring is heavily tied to a few anchor industries: financial services, healthcare technology, and defense research through organizations like Battelle and the Air Force Research Laboratory near Dayton. University partnerships with Ohio State and Case Western Reserve generate a steady pipeline of international graduates who pursue sponsorship locally. Employers in Ohio tend to value applied ML experience, so candidates with production-level deployment work often have a stronger position in sponsorship conversations.
What is the prevailing wage for sponsored ai ml engineer jobs in Ohio?
U.S. employers sponsoring a visa must pay at least the prevailing wage, which is what workers in the same role, area, and experience level typically earn. The Department of Labor sets this rate to make sure companies aren't hiring foreign workers simply because they'd accept lower pay than a U.S. worker. It varies by job title, location, and experience. You can look up current prevailing wage rates for any occupation and location using the OFLC Wage Search page.
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