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Scientist Python Jobs in Cleveland, OH (NOW HIRING)

Senior Data Scientist

Cleveland, OH · On-site

$120 - $190/hr

Overview Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop, and ... Strong proficiency in Python and SQL * Experience developing and deploying models (regression ...

POSITION SUMMARY Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop ... Strong proficiency in Python and SQL Experience developing and deploying models (regression ...

POSITION SUMMARY Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop ... Strong proficiency in Python and SQL · Experience developing and deploying models (regression ...

Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop, and deploy ... Python and SQL • Experience developing and deploying models (regression, classification ...

POSITION SUMMARY Flexjet is seeking a Senior-Level Enterprise AI Data Scientist to design, develop ... Strong proficiency in Python and SQL • Experience developing and deploying models (regression ...

Data Scientist

Mentor, OH · Hybrid

$77K - $116K/yr

AVY) is a global materials science and digital identification solutions company. We are Making ... Strong skills in multiple programming languages including Python, SQL, Javascript, HTML, and CSS ...

AVY) is a global materials science and digital identification solutions company. We are Making ... Strong skills in multiple programming languages including Python, SQL, Javascript, HTML, and CSS ...

Data Scientist

Mentor, OH · On-site

$77K - $116K/yr

AVY) is a global materials science and digital identification solutions company. We are Making ... Strong skills in multiple programming languages including Python, SQL, Javascript, HTML, and CSS ...

Data Scientist

Aurora, OH · On-site

$90 - $120/hr

Requirements * 3-7 years of experience in analytics, business intelligence, or data science ... Strong proficiency in SQL and data analysis tools (Python, R, or similar). * Experience building ...

New

Lead Data Scientist

Euclid, OH · On-site

$144K - $198K/yr

The lead data scientist will build data, analytics, and AI solutions to support SIOP (Sales ... Proficient in SQL, Python, ML modeling, and time-series analytics; hands-on AI-assisted coding ...

Showing results 21-40

Scientist Python information

See Cleveland, OH salary details

$36.4K

$119K

$190.6K

How much do scientist python jobs pay per year?

As of Aug 8, 2026, the average yearly pay for scientist python in Cleveland, OH is $119,035.00, according to ZipRecruiter salary data. Most workers in this role earn between $95,500.00 and $131,900.00 per year, depending on experience, location, and employer.

How does a Scientist Python typically collaborate with other team members during research and development projects?

Scientist Python professionals frequently work in multidisciplinary teams, collaborating closely with data scientists, domain experts, and software engineers. They are often responsible for developing and implementing Python-based models or algorithms, then integrating their work with broader research goals or product pipelines. Regular communication, code reviews, and shared documentation are common practices to ensure alignment and reproducibility. This collaborative environment offers opportunities to learn from peers and contribute to diverse projects, fostering both technical and professional growth.

What does a Scientist Python do?

A Scientist Python, often referred to as a Python Scientist or Data Scientist specializing in Python, uses the Python programming language to analyze data, build predictive models, and solve scientific or business problems. They work with large datasets, apply statistical and machine learning techniques, and create visualizations to interpret results. Their work often involves writing code to clean, manipulate, and analyze data efficiently. Python's extensive libraries, such as Pandas, NumPy, and SciPy, make it a popular choice for scientific computing and data science tasks.

What are the key skills and qualifications needed to thrive as a Scientist Python?

To thrive as a Scientist Python, you need strong programming skills in Python, a solid background in scientific methods or data analysis, and typically an advanced degree in a relevant field such as computer science, physics, or biology. Experience with data analysis libraries (e.g., NumPy, pandas, SciPy), machine learning frameworks (e.g., scikit-learn, TensorFlow), and version control systems is commonly required. Critical thinking, effective communication, and problem-solving abilities help distinguish top performers in this role. These skills enable efficient data-driven research, reproducible scientific workflows, and successful collaboration in multidisciplinary environments.

How much does a scientist Python make?

A Python scientist, often called a data scientist or machine learning engineer, typically earns between $80,000 and $130,000 annually, depending on experience, location, and industry. Advanced skills in Python, data analysis, and machine learning tools can lead to higher salaries, especially in tech hubs or specialized sectors.

What is the difference between Scientist Python vs Data Analyst Python?

AspectScientist PythonData Analyst Python
Required CredentialsBachelor's or Master's in Science, Data Science, or related fields; Python proficiencyBachelor's in Statistics, Data Analysis, or related fields; Python skills
Work EnvironmentResearch labs, R&D departments, tech companiesBusiness intelligence teams, marketing, finance departments
Employer & Industry UsageResearch institutions, tech firms, healthcareCorporate, finance, retail, marketing
Common Search & ComparisonYesYes

Scientist Python and Data Analyst Python roles share similar skills like Python programming and data handling. However, Scientists typically focus on research, experimentation, and developing new models, often working in research-heavy environments. Data Analysts concentrate on interpreting existing data to inform business decisions, working mainly in corporate settings. Both roles require strong analytical skills and Python expertise, but their focus and work environments differ significantly.

Which scientist Python job is in demand?

Data scientist and machine learning engineer roles that require Python skills are currently in high demand across various industries. These positions often seek proficiency in libraries like Pandas, NumPy, and TensorFlow, along with experience in data analysis, modeling, and visualization. Strong programming skills, relevant certifications, and knowledge of cloud platforms can enhance job prospects in this field.
What job categories do people searching Scientist Python jobs in Cleveland, OH look for? The top searched job categories for Scientist Python jobs in Cleveland, OH are:
What cities near Cleveland, OH are hiring for Scientist Python jobs? Cities near Cleveland, OH with the most Scientist Python job openings:
Infographic showing various Scientist Python job openings in Cleveland, OH as of August 2026, with employment types broken down into 86% Full Time, and 14% Contract. Highlights an 100% In-person job distribution, with an average salary of $119,035 per year, or $57.2 per hour.

Senior Data Scientist

Flexjet LLC

Cleveland, OH • On-site

$120 - $190/hr

Other

Re-posted 2 days ago


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Job description

Overview

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
  • 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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