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Artificial Intelligence Machine Learning Engineer Jobs in Connecticut

Senior AI Engineer - SFL Scientific

Stamford, CT · On-site

$111K - $153K/yr

Work with clients to design, develop, and deploy new architectures to support machine learning ... Artificial Intelligence (AI). The team has a proven track record serving large, market-leading ...

Experience applying artificial intelligence, machine learning, or large language model workflows to ... As a Senior Consultant - Cyber Defense and Resilience, you will help deliver security engineering ...

... engineering to build and deploy software and platform systems that create ... Artificial Intelligence and Machine Learning-based solutions at scale. Your work will involve ...

... engineering to build and deploy software and platform systems that create ... Artificial Intelligence and Machine Learning-based solutions at scale. Your work will involve ...

... artificial intelligence solutions to solve complex problems and enhance business operations. This ... The AI engineer is an expert in machine learning, deep learning, and data analysis and creates ...

... artificial intelligence solutions to solve complex problems and enhance business operations. This ... The AI engineer is an expert in machine learning, deep learning, and data analysis and creates ...

Required : • Bachelor's or Master's degree in Computer Science, Machine Learning, Artificial Intelligence, or a related field. • 1-6 years of professional experience in ML engineering. • Strong ...

Required : • Bachelor's or Master's degree in Computer Science, Machine Learning, Artificial Intelligence, or a related field. • 1-6 years of professional experience in ML engineering. • Strong ...

Engineer - GEN AI

Orange, CT · On-site

$122K - $147K/yr

... artificial intelligence solutions to solve complex problems and enhance business operations. This ... The AI engineer is an expert in machine learning, deep learning, and data analysis and creates ...

Engineer - GEN AI

Orange, CT · On-site

$141 - $176/hr

... artificial intelligence solutions to solve complex problems and enhance business operations. This ... The AI engineer is an expert in machine learning, deep learning, and data analysis and creates ...

Showing results 41-60

Artificial Intelligence Machine Learning Engineer information

See Connecticut salary details

$30K

$122.5K

$184.1K

How much do artificial intelligence machine learning engineer jobs pay per year?

As of Aug 22, 2026, the average yearly pay for artificial intelligence machine learning engineer in Connecticut is $122,496.00, according to ZipRecruiter salary data. Most workers in this role earn between $96,600.00 and $147,400.00 per year, depending on experience, location, and employer.

What is an artificial intelligence machine learning engineer?

An Artificial Intelligence (AI) Machine Learning Engineer is a professional who designs, builds, and implements machine learning models and AI systems. They work with large datasets, develop algorithms, and use programming languages like Python or R to enable computers to learn from data and make predictions or decisions. Their work is essential in fields such as natural language processing, computer vision, and robotics. These engineers collaborate with data scientists, software developers, and business stakeholders to deploy AI solutions in real-world applications.

What are some common challenges faced by artificial intelligence machine learning engineers when deploying models to production?

One of the main challenges AI/ML engineers encounter is ensuring that models trained in a controlled environment perform reliably in real-world production settings. This often involves handling issues like data drift, scaling models to handle large volumes of requests, and integrating with existing infrastructure. Collaboration with data engineers and software developers is crucial to streamline deployment, monitor model performance, and address any unexpected behavior quickly. Keeping up with evolving tools and best practices is also important for long-term model maintenance and success.

What are the key skills and qualifications needed to thrive as an artificial intelligence machine learning engineer, and why are they important?

To thrive as an Artificial Intelligence Machine Learning Engineer, you need strong programming skills (typically in Python or R), a background in mathematics or statistics, and a degree in computer science or a related field. Familiarity with machine learning frameworks (such as TensorFlow, PyTorch, or scikit-learn), cloud platforms, and relevant certifications are highly valuable. Problem-solving ability, creativity, and effective communication are important soft skills that distinguish top performers in this role. These competencies are crucial for designing robust AI solutions, collaborating with cross-functional teams, and driving innovation in rapidly evolving technological environments.

What is the difference between Artificial Intelligence Machine Learning Engineer vs Data Scientist?

AspectArtificial Intelligence Machine Learning EngineerData Scientist
Required CredentialsBachelor's or higher in CS, AI, ML, or related; certifications like TensorFlow, AWSBachelor's or higher in CS, Statistics, or related; certifications in data analysis or visualization
Work EnvironmentDevelops AI/ML models, coding, deploying algorithms in software environmentsAnalyzes data, builds models, interprets data insights for business decisions
Employer & Industry UsageTech companies, AI startups, R&D departmentsFinance, healthcare, marketing, consulting firms

While both roles involve working with data and algorithms, Artificial Intelligence Machine Learning Engineers focus on designing, building, and deploying AI/ML models in software systems. Data Scientists primarily analyze data to extract insights and support decision-making. The roles often overlap but differ in their core focus and daily tasks.

What are popular job titles related to Artificial Intelligence Machine Learning Engineer jobs in Connecticut?

For Artificial Intelligence Machine Learning Engineer jobs in Connecticut, the most frequently searched job titles are:

What cities in Connecticut are hiring for Artificial Intelligence Machine Learning Engineer jobs?

Cities in Connecticut with the most Artificial Intelligence Machine Learning Engineer job openings:

Infographic showing various Artificial Intelligence Machine Learning Engineer job openings in Connecticut as of August 2026, with employment types broken down into 100% Full Time. Highlights an 86% In-person, and 14% Remote job distribution, with an average salary of $122,496 per year, or $58.9 per hour.

Other

Posted 5 days ago


Job description

Title: AI Architect
Duration: 6 months
Location: Remote
Overview

The AI Architect is responsible for designing, developing, and governing enterprise-grade AI solutions that align with business strategy. This role blends deep technical expertise in artificial intelligence, machine learning, data, and cloud architecture with strong product intuition, security awareness, and leadership. The AI Architect ensures that AI initiatives are scalable, ethical, secure, cost-efficient, and integrated into the broader enterprise ecosystem.

Key Responsibilities
  • AI Strategy & Solution Architecture
    • Define and evolve the enterprise AI architecture, ensuring alignment with business, data, and technology strategies.
    • Design scalable, secure, and compliant automation solutions to streamline across the enterprise.
    • Architect end-to-end AI solutions including data engineering, RAG model development, model operations (MLOps), and lifecycle management.
    • Partner with business, product, and engineering teams to translate business problems into appropriate AI/ML approaches.
    • Develop reference architectures and reusable patterns for generative AI, Agentic AI, predictive models, conversational systems, and intelligent automation.
  • Technical Leadership
    • Provide architectural oversight across AI/ML projects to ensure consistency, performance, and maintainability.
    • Evaluate and select AI technologies, frameworks, cloud services, vector databases, LLM orchestration frameworks, and tooling.
    • Support development teams on model selection, training pipelines, prompt engineering, fine-tuning, RAG (Retrieval-Augmented Generation), and evaluation methodologies.
    • Mentor engineers, analysts, and product teams on AI best practices.
  • Data, Integration & Platforms
    • Partner with data architects and engineering to ensure robust data pipelines, governance, feature stores, and architecture.
    • Design secure and performant integration between AI models and enterprise systems (APIs, microservices, events).
  • Governance & Compliance
    • Ensure AI solutions adhere to enterprise security standards, data privacy policies, and regulatory requirements.
    • Implement responsible AI guardrails, fairness checks, explainability frameworks, and monitoring.
    • Develop and maintain automation governance frameworks, documentation, and audit trails.
  • Operations & Optimization
    • Define MLOps / LLMOps standards including CI/CD pipelines, model monitoring, drift detection, observability, and rollback processes.
    • Drive continuous improvement of model performance, cost optimization, and operational efficiency.
    • Establish KPIs, telemetry, and feedback loops for production AI systems.
  • Collaboration & Enablement
    • Partner with IT, compliance, operations, and customer service teams to align automation initiatives with business goals.
    • Mentor and guide developers and analysts to build a center of excellence (CoE) for automation.
Required Qualifications
  • Bachelor’s degree in Computer Science, Engineering, or a related technical field.
  • 5 years of experience in application development, engineering, or solution delivery roles.
  • 1 year of hands-on experience in AI/ML engineering, data science, or AI solution architecture.
  • Strong hands-on experience with machine learning frameworks and LLM platforms (e.g., OpenAI, Azure AI Foundry, Copilot Studio/Agent Builder, or comparable generative AI ecosystems).
  • Deep expertise in cloud platforms, particularly Microsoft Azure, and modern architectural patterns (microservices, event-driven architectures, API-first design).
  • Proficiency in one or more of the following: Python, Azure Machine Learning, or related AI/ML tooling.
  • Experience with MLOps/LLMOps ecosystems, including tools such as MLflow, Kubernetes, LangChain, vector databases, and feature stores.
  • Strong hands-on experience with ML frameworks, LLM platforms - OpenAI, MSFT/Azure Cloud foundry, Copilot Studio Agent builder, low code/no code platforms, and generative AI tools.
  • Background in RAG systems, model fine-tuning, embeddings, vector storage, and retrieval optimization.
Preferred Qualifications
  • Experience with enterprise-wide AI programs or platform buildouts.
  • Strong understanding of data governance, privacy, security, and model risk management.
  • Prior experience with large-scale transformation programs.
Location

This position is Work At Home, offering flexibility and convenience for the right candidate.