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Ai Coder Jobs in Kentucky (NOW HIRING)

Preferred Qualifications · Experience with AI coding assistants such as GitHub Copilot Coding Assistant, OpenAI Codex, Claude Code, AWS Kiro, or similar tools. · Experience with prompt engineering ...

Vibe Coding Tutor

Lexington, KY · Remote

$18 - $40/hr

... Vibe Coding tutors nationally. As a tutor on the Varsity Tutors Platform, you'll have the ... Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ...

Vibe Coding Tutor

Louisville, KY · Remote

$18 - $40/hr

... Vibe Coding tutors nationally. As a tutor on the Varsity Tutors Platform, you'll have the ... Our AI-powered Tutor Copilot enhances your sessions with real-time instructional support, lesson ...

Senior Applied AI Software Engineer ( AI)

Louisville, KY · On-site +1

$117K - $155K/yr

Proficiency with AI-assisted development tools such as Claude Code, Cursor, Replit, or comparable AI-enabled coding platforms, applying these tools for code acceleration, prototyping, debugging, and ...

Senior Applied AI Software Engineer ( AI)

Louisville, KY · On-site +1

$117K - $155K/yr

Proficiency with AI-assisted development tools such as Claude Code, Cursor, Replit, or comparable AI-enabled coding platforms, applying these tools for code acceleration, prototyping, debugging, and ...

Senior Applied AI Software Engineer ( AI)

Louisville, KY · On-site +1

$117K - $155K/yr

Proficiency with AI-assisted development tools such as Claude Code, Cursor, Replit, or comparable AI-enabled coding platforms, applying these tools for code acceleration, prototyping, debugging, and ...

Leverage hands-on fluency with modern AI tooling (LLM APIs, orchestration frameworks, low-code/no-code platforms) to stay grounded in technical reality and credibly advise on implementation ...

Leverage hands-on fluency with modern AI tooling (LLM APIs, orchestration frameworks, low-code/no-code platforms) to stay grounded in technical reality and credibly advise on implementation ...

Leverage hands-on fluency with modern AI tooling (LLM APIs, orchestration frameworks, low-code/no-code platforms) to stay grounded in technical reality and credibly advise on implementation ...

Leverage hands-on fluency with modern AI tooling (LLM APIs, orchestration frameworks, low-code/no-code platforms) to stay grounded in technical reality and credibly advise on implementation ...

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Showing results 1-20

Ai Coder information

See Kentucky salary details

$13

$23

$37

How much do ai coder jobs pay per hour?

As of Aug 5, 2026, the average hourly pay for ai coder in Kentucky is $23.88, according to ZipRecruiter salary data. Most workers in this role earn between $16.49 and $30.05 per hour, depending on experience, location, and employer.

What types of projects do AI coders typically work on, and how does project collaboration usually happen?

AI Coders are often involved in developing machine learning models, creating data pipelines, and integrating AI solutions into existing products. Collaboration is a key part of the role, with AI Coders working closely with data scientists, software engineers, and product managers to translate business needs into technical solutions. Most teams use agile methodologies, daily stand-ups, and collaborative platforms like GitHub or Jira to coordinate tasks and track progress. This structure ensures that AI Coders receive frequent feedback and can contribute ideas throughout the development cycle.

What is an AI coder?

AI Coders are professionals who develop, implement, and maintain artificial intelligence (AI) systems and applications. They use programming languages such as Python, Java, and R to write code that enables machines to perform tasks that typically require human intelligence, such as learning, reasoning, and problem-solving. AI Coders often work with machine learning models, neural networks, and large datasets to create intelligent solutions for various industries. Their work can range from building chatbots and recommendation systems to designing complex algorithms for automation.

What is the difference between Ai Coder vs Data Scientist?

AspectAi CoderData Scientist
Required CredentialsProgramming skills, knowledge of AI frameworks, certifications in AI/MLStatistics, programming, data analysis certifications
Work EnvironmentSoftware development teams, AI research labsData analysis teams, research environments
Employer & Industry UsageTech companies, AI startups, R&D departmentsFinance, healthcare, marketing, tech firms

While both roles involve working with data and algorithms, Ai Coders primarily focus on developing AI models and coding AI solutions, whereas Data Scientists analyze data to extract insights and inform business decisions. Ai Coders are more involved in software development, while Data Scientists emphasize statistical analysis and data interpretation.

What are the key skills and qualifications needed to thrive as an AI coder, and why are they important?

To thrive as an AI Coder, you need strong programming skills (especially in Python), a solid understanding of machine learning concepts, and typically a degree in computer science or a related field. Familiarity with AI frameworks like TensorFlow or PyTorch, as well as experience with version control systems such as Git, is essential. Strong problem-solving abilities, attention to detail, and effective communication help you collaborate with teams and explain complex solutions. These skills and qualities are crucial for developing, optimizing, and maintaining reliable AI models that address real-world challenges.
What are popular job titles related to Ai Coder jobs in Kentucky? For Ai Coder jobs in Kentucky, the most frequently searched job titles are:
What cities in Kentucky are hiring for Ai Coder jobs? Cities in Kentucky with the most Ai Coder job openings:
Infographic showing various Ai Coder job openings in Kentucky as of July 2026, with employment types broken down into 68% Full Time, 22% Part Time, and 10% Contract. Highlights an 59% Physical, 3% Hybrid, and 38% Remote job distribution, with an average salary of $49,664 per year, or $23.9 per hour.

AI Enablement Trainer

Prolim Global

Georgetown, KY • On-site

Contractor

Posted 22 days ago


Job description

Looking for  AI Enablement Trainer

Location: Georgetown, Kentucky (4 days onsite)

Position Summary:                                                                                                                 

We are seeking a highly motivated and experienced Developer AI Enablement Lead with 5 years of experience to join our dynamic Business Support team. The ideal candidate with a strong background in software engineering, solution architecture, DevOps, developer enablement, or technical training, who has hands-on experience using AI tools in software development workflows. The ideal candidate combines technical credibility with excellent communication, facilitation, and learning design skills, and can effectively engage engineers, architects, product teams, and technology leaders to drive enterprise AI adoption.

The successful candidate will be responsible for designing and delivering hands-on AI training programs, workshops, labs, demos, and enablement materials for technical teams; promoting responsible and effective use of AI across the software development lifecycle; creating reusable learning assets and technical playbooks; facilitating technical events and hackathons; collaborating with cross-functional stakeholders; and helping engineering teams adopt AI tools and practices in a practical, secure, and measurable way.                                                                                                            

Essential Functions:                                                                                                              

·       Design and deliver hands-on AI training for software engineers, developers, architects, technical product teams, and related technology audiences.

·       Build developer-focused curriculum, workshops, labs, demos, facilitator guides, job aids, and reusable learning assets.

·       Teach practical use of AI across the software development lifecycle, including requirements analysis, code generation, debugging, refactoring, documentation, test creation, code review, release support, and technical problem solving.

·       Create technical examples that are realistic, credible, and useful for engineering teams.

·       Facilitate live technical workshops, virtual sessions, bootcamps, lunch-and-learns, hackathon-style events, and internal enablement sessions.

·       Partner with engineering, architecture, cybersecurity, data, cloud, product, and responsible AI stakeholders to ensure training reflects approved tools, standards, and enterprise expectations.

·       Help teams understand when AI is useful, when it is risky, and when human review is required.

·       Support the development of prompt libraries, technical playbooks, lab exercises, reference examples, and reusable patterns for technical users.

·       Translate complex AI concepts into practical guidance for technical audiences without oversimplifying important risks or limitations.

·       Gather learner feedback, technical questions, use cases, and adoption barriers to improve future enablement.

·       Help identify common engineering use cases that may require additional documentation, governance review, technical support, or escalation.

·       Stay current on emerging AI development tools, coding assistants, agentic workflows, model capabilities, and enterprise AI practices

·       Advise on smart implementation that aligns the right models to the right job and reflects in transparent token consumption and cost management

Requirements

Minimum qualification:                                                                                                                      

Required Education & Experience:

·       Bachelor’s degree or equivalent experience

·       Experience in software engineering, solution architecture, DevOps, platform engineering, technical product delivery, developer relations, or technical enablement.

·       Hands-on experience using AI tools in technical workflows, such as AI-assisted coding, debugging, documentation, testing, research, or automation.

·       Ability to design and facilitate technical training for engineering audiences.

·       Strong understanding of software development lifecycle practices, including requirements, development, testing, code review, deployment, documentation, and operational support.

·       Ability to explain technical concepts clearly to mixed audiences, including engineers, managers, and non-technical stakeholders.

·       Strong communication, facilitation, and presentation skills.

·       Comfort running live demos and adapting when tools, environments, or participant questions do not go as planned.

·       Ability to build practical exercises, examples, and learning assets that participants can apply immediately.

·       Awareness of responsible AI, security, privacy, intellectual property, and human-in-the-loop review considerations.

·       Strong collaboration skills in a large enterprise environment.

Preferred Qualifications

·       Experience with AI coding assistants such as GitHub Copilot Coding Assistant, OpenAI Codex, Claude Code, AWS Kiro, or similar tools.

·       Experience with prompt engineering for technical workflows.

·       Familiarity with RAG, agents, LLM evaluation, orchestration patterns, APIs, cloud platforms, or enterprise AI architectures.

·       Experience creating technical labs, sample repositories, code walkthroughs, enablement guides, or developer documentation.

·       Experience supporting hackathons, developer communities, technical bootcamps, or internal technology events.

·       Experience with secure coding, application security, cloud security, DevSecOps, or governance-heavy enterprise environments.

·       Experience working with product teams, agile delivery teams, engineering leaders, or architecture review groups.

·       Prior experience in developer advocacy, technical training, technical program management, or engineering enablement.

What Success Looks Like

Success in this role means technical teams are not just aware of AI tools — they are using them more effectively, responsibly, and consistently.

The role will help drive:

·       Increased confidence and adoption of approved AI tools among technical teams.

·       Higher-quality developer enablement materials, labs, and technical examples.

·       More practical, hands-on learning experiences for engineers.

·       Reusable technical playbooks and prompt patterns.

·       Better understanding of where AI fits into engineering workflows.

·       Clearer guidance on responsible and secure AI-assisted development.

·       More consistent capture of technical use cases, questions, and adoption barriers.

·       Stronger alignment between AI enablement, engineering practices, and enterprise technology standards.

Ideal Candidate Profile

You may be a strong fit if you are the kind of person who can:

·       Sit with software engineers and earn credibility quickly.

·       Explain AI without hype.

·       Teach through demos, examples, and hands-on practice rather than long slide decks.

·       Build content from scratch when the topic is new or still evolving.

·       Turn complex technical topics into clear learning paths.

·       Facilitate skeptical or advanced technical audiences.

·       Balance innovation with enterprise guardrails.

·       Help teams move from curiosity to practical adoption.