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Contract Llm Ai Jobs (NOW HIRING)

Contract Compensation: $60-$80/hour Location: Remote Role Responsibilities * Guide research and ... Prior hands-on experience evaluating LLM/AI model outputs against rubrics or structured scoring ...

Contract Compensation: $65-$90/hour Location: Remote Commitment: 35 hours/week Role ... Prior hands-on experience evaluating LLM/AI model outputs against rubrics or structured scoring ...

Senior AI Engineer

Costa Mesa, CA ยท On-site

$112K - $154K/yr

  • Medical

  • Dental

  • Vision

  • Life

  • Retirement

... LLM orchestration and agentic frameworks - APIs:GraphQL,gRPC, REST at scale Drive innovation by ... contract testing, and quality gates - Observability platforms (Prometheus,OpenTelemetry, Grafana ...

Senior AI Engineer

Costa Mesa, CA ยท On-site

$112K - $154K/yr

  • Medical

  • Dental

  • Vision

  • Life

  • Retirement

... LLM orchestration and agentic frameworks - APIs:GraphQL,gRPC, REST at scale Drive innovation by ... contract testing, and quality gates - Observability platforms (Prometheus,OpenTelemetry, Grafana ...

... contract-to-hire possible) Experience Level: 3-7 years Interview Process: Two onsite technical ... The engineer will collaborate across domains, design resilient systems, and contribute to AI/LLM ...

Director, AI Engineering & Innovation

Los Angeles, CA ยท On-site

  • Medical

  • Dental

  • Vision

  • Retirement

  • PTO

Lead vendor assessments, contract negotiations, and ongoing governance for third-party AI tools and ... Enterprise LLM & AI application expertise: Proven track record designing, building, and deploying ...

Director, AI Engineering & Innovation

Los Angeles, CA ยท On-site

  • Medical

  • Dental

  • Vision

  • Retirement

  • PTO

Lead vendor assessments, contract negotiations, and ongoing governance for third-party AI tools and ... Enterprise LLM & AI application expertise: Proven track record designing, building, and deploying ...

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Contract Llm Ai information

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How much do contract llm ai jobs pay per hour?

As of Aug 16, 2026, the average hourly pay for contract llm ai in the United States is $72.50, according to ZipRecruiter salary data. Most workers in this role earn between $64.66 and $82.45 per hour, depending on experience, location, and employer.

What is the difference between Contract Llm Ai vs Contract Lawyer?

AspectContract Llm AiContract Lawyer
CredentialsLegal degree, specialized LLM in AI law, technical understandingLaw degree, bar admission, legal licensing
Work EnvironmentLegal tech firms, AI companies, legal departmentsLaw firms, corporate legal departments, government agencies
Industry UsageLegal technology, AI-driven contract analysisTraditional legal services, contract drafting and review

Contract Llm Ai professionals focus on applying AI tools to legal contracts, often requiring a legal background combined with technical knowledge. Contract Lawyers provide legal advice, draft, and review contracts through traditional legal channels. While both roles involve contracts, Contract Llm Ai emphasizes technology integration, whereas Contract Lawyers focus on legal expertise and client representation.

What is a Contract LLM AI?

A Contract LLM AI refers to an artificial intelligence system, often based on large language models (LLMs), that is specifically designed to assist with legal contract analysis, drafting, and management. These AI tools can review, interpret, and even generate contract language, helping legal professionals streamline their workflow and reduce manual effort. By leveraging advanced natural language processing, Contract LLM AI can identify key clauses, flag risks, and ensure compliance with legal standards. This technology is increasingly used by law firms and corporate legal departments to improve efficiency and minimize errors in contract-related tasks.

What are some common challenges faced by Contract LLM AI professionals when integrating AI solutions into existing business processes?

Contract LLM AI professionals often encounter challenges such as aligning AI model capabilities with client expectations, ensuring data privacy compliance, and integrating AI solutions with legacy systems. They may also need to address gaps in available training data and manage stakeholder expectations regarding AI output accuracy and limitations. Navigating these challenges typically involves close collaboration with cross-functional teams, clear communication with clients, and iterative testing to ensure that AI solutions add real value to business processes.

What are the key skills and qualifications needed to thrive as a Contract LLM AI specialist?

To thrive as a Contract LLM AI Specialist, you need expertise in natural language processing, machine learning frameworks, and a solid background in computer science or related fields. Familiarity with tools like Python, TensorFlow, PyTorch, and experience with large language model APIs or platforms are typically required. Strong problem-solving, clear communication, and adaptability distinguish top performers in this role. These skills are essential for delivering robust AI solutions, collaborating with stakeholders, and keeping pace with rapid advancements in the AI landscape.
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Infographic showing various Contract Llm Ai job openings in the United States as of August 2026, with employment types broken down into 76% Full Time, 20% Part Time, and 4% Contract. Highlights an 67% Physical, 4% Hybrid, and 29% Remote job distribution, with an average salary of $150,805 per year, or $72.5 per hour.

AI/ML Engineer - LLM & AI Harness Engineering - 100% Remote US

WilsonCTS

Middletown, PA โ€ข On-site, Remote

$125/hr

Full-time, Part-time, Contractor

Posted yesterday

New


Job description

AI/ML Engineer - LLM & AI Harness Engineering

Location: 100% Remote - United States
Schedule: Monday-Friday, 8:00 AM-5:00 PM ET
Duration: 12-Month Contract
Compensation: Up to $125/hour
Hours: Full-time preferred; part-time may be considered for the right candidate

About the Opportunity

A leading global technology and engineering company is seeking an experienced AI/ML Engineer to join its Digital Data Networks organization and help build practical AI solutions that accelerate engineering productivity, technical data analysis, and decision-making.

This is a highly hands-on role focused on AI/LLM harness engineering. You will build Python-based solutions around existing AI models, incorporating LLMs, Retrieval-Augmented Generation (RAG), AI agents, tool calling, structured workflows, evaluation, and guardrails.

The ideal candidate combines strong AI/ML engineering skills with the ability to understand and work with complex technical and engineering data.

What You'll Do
  • Develop and validate Python-based AI/ML and LLM workflows for engineering analysis, technical data processing, automation, and decision support.

  • Build model training and validation pipelines using open datasets and adapt approaches for engineering datasets such as s-parameters, VNA, simulation, test, and other measurement data.

  • Apply machine learning and deep learning techniques, including neural networks, CNNs, and LSTM/recurrent models, to practical engineering challenges.

  • Develop LLM workflows for data parsing, summarization, extraction, classification, and structured outputs using local or hosted AI models.

  • Design and implement RAG solutions that ground AI responses in trusted engineering documents, datasets, and approved knowledge sources.

  • Build AI-agent and LLM harness workflows incorporating task routing, tool calling, workflow orchestration, evaluation, and guardrails.

  • Develop or integrate custom tools that allow AI workflows to interact with engineering and technical data sources.

  • Collaborate with signal integrity, product development, testing, manufacturing, and operations teams to identify opportunities for AI automation and decision support.

  • Translate technical requirements into reliable, reusable AI workflows and prototypes.

  • Document AI workflows, assumptions, validation approaches, limitations, and recommended next steps.

  • Evaluate AI-generated results, identify limitations or risks, and make data-driven recommendations for improvement.

Required Qualifications
  • Bachelor's degree in Engineering, Computer Science, Data Science, Applied Mathematics, or a related technical discipline. Master's degree is a plus.

  • Strong hands-on experience with Python for AI/ML development, data processing, model training, validation, and automation.

  • Solid understanding of machine learning and deep learning, including neural networks, CNNs, and LSTM/recurrent architectures.

  • Experience with AI/ML frameworks such as PyTorch, TensorFlow, or equivalent.

  • Understanding of GPU-enabled AI/ML development and CUDA, particularly in NVIDIA environments.

  • Practical knowledge of Large Language Models (LLMs) and experience working with open-source and/or commercial AI models.

  • Experience with local LLM environments or model-serving tools such as Ollama, LM Studio, llama.cpp, or equivalent.

  • Experience with Hugging Face, LangChain, or similar AI/LLM frameworks.

  • Strong understanding of Retrieval-Augmented Generation (RAG) and experience implementing RAG-based workflows.

  • Ability to design AI-agent/harness architectures incorporating RAG, tool calling, workflow orchestration, evaluation, guardrails, and external data sources.

  • Strong analytical and problem-solving abilities with a focus on validating AI outputs and understanding model limitations.

  • Excellent communication skills and the ability to explain AI concepts and technical tradeoffs to engineering stakeholders.

  • Ability to work independently, learn quickly, and collaborate effectively within a global technical organization.

Nice-to-Have Experience
  • Experience applying AI/ML or LLMs to engineering, signal-integrity, measurement, simulation, test, or product-development datasets.

  • Experience developing custom AI tools for engineering measurement, simulation, test, or product-development workflows.

  • Experience using Generative AI to support product design, engineering parameter optimization, or design iteration.

  • Experience using AI to identify product defects, performance issues, root causes, and corrective actions.

  • Experience with AWS-based AI/data environments, including databases, queues, notebooks, or related infrastructure.

  • Strong experience with Python/Jupyter notebooks for rapid prototyping and technical demonstrations.

  • Experience evaluating user or engineering performance with and without AI assistance.

  • Understanding of GPU resource planning and compute constraints impacting AI/ML development.

  • Hands-on experience with LLM fine-tuning, domain-specific model adaptation, training-data development, model serving, or GPU optimization.

  • Experience working in high-speed interconnect, cable assembly, signal integrity, or related engineering/product-development environments.

Why This Role?

This is an opportunity to work at the intersection of AI, LLMs, software engineering, and advanced engineering applications. You'll have the opportunity to move beyond experimentation and build practical AI systems that can be used by technical teams to analyze data, automate workflows, improve engineering decisions, and accelerate product development.