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Machine Learning Data Associate Jobs in Cleveland, OH

The ideal candidate has hands-on experience with machine learning, large language models (LLMs), Retrieval-Augmented Generation (RAG), and enterprise data systems. Collaborate with data engineers ...

The ideal candidate has hands-on experience with machine learning, large language models (LLMs), Retrieval-Augmented Generation (RAG), and enterprise data systems. Collaborate with data engineers ...

Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop, and deploy ... Responsibilities : • Design and implement enterprise-scale machine learning models, including ...

... machine learning, or generative AI can improve productivity, reduce cost, or unlock new ... With headquarters in Reading, PA, Penske and its associates are driven by a dedication to ...

... machine learning, or generative AI can improve productivity, reduce cost, or unlock new ... With headquarters in Reading, PA, Penske and its associates are driven by a dedication to ...

AI Engineer

Cleveland, OH · On-site

$50K - $112K/yr

... Machine Learning-based solutions at scale. Your work will involve designing AI systems, data wrangling, and software implementation to enable the AI models to be useful and scalable. As an Associate ...

Drive the future of AIpowered decisionmaking by leading sophisticated machine learning and GenAI ... Headquartered in Amelia, Ohio, and with associates located across the United States, we are part of ...

Drive the future of AIpowered decisionmaking by leading sophisticated machine learning and GenAI ... Headquartered in Amelia, Ohio, and with associates located across the United States, we are part of ...

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Machine Learning Data Associate information

See Cleveland, OH salary details

$9

$18

$29

How much do machine learning data associate jobs pay per hour?

As of Aug 20, 2026, the average hourly pay for machine learning data associate in Cleveland, OH is $18.17, according to ZipRecruiter salary data. Most workers in this role earn between $14.90 and $19.33 per hour, depending on experience, location, and employer.

What is a machine learning data associate?

Machine Learning Data Associates are professionals who support the development of machine learning models by preparing, labeling, and validating data sets. Their work ensures that data used for training algorithms is accurate, consistent, and properly annotated. They may also assist with data cleaning, quality checks, and sometimes basic data analysis tasks. This role is crucial in industries where high-quality labeled data is essential for building effective AI systems.

What are the key skills and qualifications needed to thrive as a machine learning data associate?

To thrive as a Machine Learning Data Associate, you need strong analytical skills, attention to detail, and a basic understanding of data annotation and labeling processes, often supported by a degree in computer science or a related field. Familiarity with data management tools, annotation platforms, and sometimes scripting languages like Python is typically required. Strong communication, collaboration, and problem-solving abilities help you work efficiently with data science teams and ensure high-quality outcomes. These skills and qualities are crucial for producing accurate datasets that directly impact the effectiveness of machine learning models.

How does a machine learning data associate typically collaborate with data scientists and engineers within a project team?

As a Machine Learning Data Associate, you play a vital role in supporting data scientists and engineers by annotating, cleaning, and organizing large datasets to ensure high data quality. You'll frequently communicate with team members to clarify labeling guidelines, provide feedback on data inconsistencies, and report any edge cases encountered during annotation. This collaboration ensures that the datasets used for training machine learning models are accurate and comprehensive, directly impacting the success of the project. Expect regular team meetings and ongoing feedback loops to maintain alignment with evolving project requirements.

What is the difference between Machine Learning Data Associate vs Data Analyst?

AspectMachine Learning Data AssociateData Analyst
Required SkillsData cleaning, labeling, basic programming, understanding of ML workflowsData interpretation, visualization, statistical analysis
Work EnvironmentTech companies, AI startups, research labsBusiness, finance, marketing, healthcare sectors
Common CertificationsData Science certifications, Python, SQLExcel, Tableau, SQL certifications

The main difference is that Machine Learning Data Associates focus on preparing and labeling data specifically for machine learning models, while Data Analysts interpret data to generate insights for business decisions. Both roles require strong data skills and often overlap, but their primary objectives and work environments differ.

How do I become a machine learning data associate?

To become a machine learning data associate, candidates typically need a high school diploma or equivalent, with some roles preferring a bachelor's degree in computer science, data science, or related fields. Relevant skills include data annotation, understanding of machine learning concepts, and proficiency with tools like Excel, SQL, or data labeling platforms. Gaining experience through internships or certifications can improve job prospects in this field.

Is a Machine Learning Data Associate a good job?

A Machine Learning Data Associate role involves preparing and managing data for machine learning models, often requiring skills in data cleaning, annotation, and familiarity with tools like Python or SQL. It can be a good entry-level position for those interested in AI and data science, offering opportunities to develop technical skills and gain industry experience. Compensation and job satisfaction vary depending on the employer and location, but it generally provides a solid foundation for a career in machine learning or data analysis.

What cities near Cleveland, OH are hiring for Machine Learning Data Associate jobs?

Cities near Cleveland, OH with the most Machine Learning Data Associate job openings:

Infographic showing various Machine Learning Data Associate job openings in Cleveland, OH as of August 2026, with employment types broken down into 1% As Needed, 82% Full Time, 9% Part Time, 5% Temporary, and 3% Contract. Highlights an 86% Physical, 4% Hybrid, and 10% Remote job distribution, with an average salary of $37,798 per year, or $18.2 per hour.

Senior Data Scientist

Flexjet

Cleveland, OH • On-site

Full-time

Re-posted 14 days ago


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Job description

POSITION SUMMARY
Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop, and deploy enterprise-scale AI and Generative AI solutions that improve productivity, automate workflows, and enhance decision-making across the organization.
This role focuses on building LLM-powered enterprise applications, such as internal knowledge assistants, document processing systems, and workflow automation tools. The ideal candidate has hands-on experience with machine learning, large language models (LLMs), Retrieval-Augmented Generation (RAG), and enterprise data systems.
Collaborate with data engineers, software engineers, product teams, and business stakeholders to build secure, scalable, and production-ready AI solutions that align with enterprise governance and compliance standards.
DUTIES & RESPONSIBILITIES
� Design and implement enterprise-scale machine learning models, including predictive and classification systems
� Develop intelligent automation solutions to streamline business workflows
� Build and deploy LLM-powered applications, such as enterprise knowledge assistants and chatbots
� Design and implement Retrieval-Augmented Generation (RAG) pipelines
� Develop solutions for semantic search, document intelligence, and enterprise search capabilities
� Optimize prompt engineering workflows and fine-tune models using domain-specific data
� Evaluate and benchmark machine learning and LLM model performance
� Work with large-scale structured and unstructured data sources across enterprise systems
� Design and build scalable data pipelines to support AI and machine learning workflows
� Integrate AI solutions with internal systems, APIs, and enterprise platforms
� Partner with data engineering teams to design and optimize data architectures
� Deploy AI/ML models into production environments
� Implement model monitoring, performance tracking, and alerting
� Maintain model versioning, reproducibility, and lifecycle management
� Support and contribute to CI/CD pipelines for AI and ML deployments
� Ensure scalability, reliability, and performance of systems in production environments
� Implement responsible AI practices, including fairness, transparency, and risk mitigation
� Ensure compliance with enterprise data governance, privacy, and security standards
� Support model explainability and documentation requirements
� Maintain thorough documentation of models, systems, and workflows
� Translate business needs into actionable technical solutions
� Work closely with product, engineering, and analytics teams to deliver AI-driven solutions
� Communicate technical concepts and solutions clearly to non-technical stakeholders
� Contribute to system architecture decisions and design discussions
� Document workflows, design decisions, and results
EDUCATION & EXPERIENCE
� Bachelor's or master's degree in computer science, Information Technology, Data Science, or a related field, or an equivalent combination of education, training, and relevant professional experience.
� 5+ years of experience in Data Science, Machine Learning, and AI software engineering, machine learning engineering, platform engineering, MLOps, or DevOps.
� Experience building and deploying production ML systems
� Hands-on expertise in data preprocessing, feature engineering, and model evaluation
� Experience working with APIs, large datasets, and enterprise systems
REQUIRED TECHNICAL SKILLS & QUALIFICATIONS
� Programming: Strong proficiency in Python and SQL
� Experience developing and deploying models (regression, classification, clustering, ensembles, neural networks)
� Strong understanding of data preprocessing, feature engineering, and model evaluation
� Prompt engineering and optimization
� Retrieval-Augmented Generation (RAG)
� Embeddings and vector search
� Model evaluation and fine-tuning
� Experience working with large, complex datasets
� Data pipelines, ETL processes, and enterprise data warehouses
� API integrations and distributed/enterprise-scale systems
� Deployment & Infrastructure:
� Building and maintaining production-ready ML systems
� Familiarity with Docker, Kubernetes, and REST APIs
� CI/CD pipelines and version control (Git)
� Experience with AWS, Azure, or Google Cloud
PREFERRED QUALIFICATIONS
� Experience developing LLM-powered applications in enterprise environments
� Hands-on experience with RAG pipelines, embeddings, and vector databases
� Strong understanding of prompt engineering and LLM evaluation techniques
� Familiarity with frameworks such as LangChain, LlamaIndex, and Hugging Face
� Knowledge of MLOps practices, including CI/CD, model monitoring, and lifecycle management
� Experience with Docker, Kubernetes, and containerized deployments
� Understanding of data governance, responsible AI, and model explainability

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