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Machine Engineer Jobs in Connecticut (NOW HIRING)

Our global engineering teams work collaboratively to develop step-change technologies that define ... machine learning models or statistical analyses into production and keeping them running • ...

New

Work closely with experienced machinists, engineers, quality, and maintenance teams. What We're Looking For * Manufacturing or machine operation experience is preferred but not required. * Mechanical ...

... advanced engineered solutions for the aerospace and transportation industries. Our primary ... CNC machining experience preferred. * Experience with multi-axis machining, including 5-axis ...

Work closely with experienced machinists, engineers, quality, and maintenance teams. What We're Looking For * Manufacturing or machine operation experience is preferred but not required. * Mechanical ...

Work closely with experienced machinists, engineers, quality, and maintenance teams. What We're Looking For * Manufacturing or machine operation experience is preferred but not required. * Mechanical ...

Develop and implement efficient CNC machining processes, including tooling, fixtures, and programming for multi-axis CNC machines. * Create and optimize CNC programs using CAD/CAM software, ensuring ...

Work closely with experienced machinists, engineers, quality, and maintenance teams. What We're Looking For * Manufacturing or machine operation experience is preferred but not required. * Mechanical ...

Machine Operator

Bethel, CT · On-site

$17.50 - $21/hr

Adjust machine parameters using Fanuc controls, programmable logic controllers (PLCs), CAM programming, and CNC programming techniques. * Handle materials safely within the warehouse environment ...

Machine Operator

Shelton, CT · On-site

$17 - $20.25/hr

You will find and read engineering drawings to program the machines using G-code for effective performance. Your day will include various machining tasks such as turning, milling, drilling, threading ...

Machine Operator

Shelton, CT · On-site

$17 - $20.25/hr

You will find and read engineering drawings to program the machines using G-code for effective performance. Your day will include various machining tasks such as turning, milling, drilling, threading ...

Machine Operator

Shelton, CT

$17 - $20.25/hr

You will find and read engineering drawings to program the machines using G-code for effective performance. Your day will include various machining tasks such as turning, milling, drilling, threading ...

CNC MACHINIST

Naugatuck, CT · On-site

$23 - $40/hr

... machine functions on metal work pieces in a safe manner (Tsugami Mill, Okuma Lathe, Studer 5 Axis Grinder, Kellenberger CNC). * Takes apart and reverse engineers parts. * Measures dimensions of ...

CNC MACHINIST

Naugatuck, CT · On-site

$23 - $40/hr

... machine functions on metal work pieces in a safe manner (Tsugami Mill, Okuma Lathe, Studer 5 Axis Grinder, Kellenberger CNC). * Takes apart and reverse engineers parts. * Measures dimensions of ...

Whether lasers, machine tools, EUV or electronics - TRUMPF is building technological worlds for future generations. Are you ready for new challenges? Applications Engineer will perform essential ...

Whether lasers, machine tools, EUV or electronics - TRUMPF is building technological worlds for future generations. Are you ready for new challenges? Applications Engineer will perform essential ...

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Showing results 1-20

Machine Engineer information

See Connecticut salary details

$30K

$122.5K

$184.1K

How much do machine engineer jobs pay per year?

As of Aug 23, 2026, the average yearly pay for machine 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 a machine engineer?

Machine Engineers are professionals who design, develop, test, and maintain machinery and mechanical systems used in various industries, such as manufacturing, automotive, and robotics. They apply principles of mechanical engineering, mathematics, and physics to solve problems related to machines and their components. Machine Engineers may work on improving existing equipment, developing new machines, or overseeing the installation and operation of machinery. Their responsibilities often include creating technical drawings, selecting appropriate materials, and ensuring machines operate safely and efficiently.

What are the key skills and qualifications needed to thrive as a machine engineer, and why are they important?

To thrive as a Machine Engineer, you need a solid background in mechanical engineering principles, problem-solving skills, and typically a bachelor’s degree in mechanical or related engineering fields. Experience with CAD software, PLC programming, and familiarity with industry standards or certifications like Six Sigma are often required. Strong analytical thinking, attention to detail, and effective communication skills set outstanding professionals apart in this field. These competencies are crucial for designing, optimizing, and maintaining machinery to ensure efficient and safe operations in manufacturing environments.

What are the typical collaborative interactions a machine engineer has with other departments?

Machine Engineers frequently work alongside cross-functional teams, including production, quality assurance, and maintenance. They often collaborate with design engineers to refine machine specifications and with operators to ensure equipment runs smoothly. Regular communication with procurement and supply chain teams is also common to coordinate the sourcing of machine components and materials. This collaborative approach helps ensure that machinery meets both operational and safety standards while aligning with overall production goals.

What is the difference between Machine Engineer vs Mechanical Engineer?

AspectMachine EngineerMechanical Engineer
Required CredentialsBachelor's in Mechanical, Electrical, or Industrial Engineering; certifications varyBachelor's in Mechanical Engineering; often includes licensure
Work EnvironmentManufacturing plants, industrial facilities, machinery designDesign offices, research labs, manufacturing settings
Industry UsageHeavy machinery, automation, manufacturingAutomotive, aerospace, robotics, product design

Machine Engineers focus on designing, maintaining, and improving machinery and automation systems, often working directly with manufacturing equipment. Mechanical Engineers have a broader scope, working on product design, thermodynamics, and structural analysis across various industries. Both roles require strong engineering fundamentals, but Machine Engineers typically specialize in machinery operation and optimization, while Mechanical Engineers work on a wider range of mechanical systems.

How much is the salary of a machine engineer?

The average salary of a machine engineer varies by location and experience but typically ranges from $60,000 to $100,000 annually. Entry-level positions may start lower, while experienced engineers with specialized skills or certifications can earn higher salaries, especially in manufacturing or industrial settings.
Infographic showing various Machine Engineer job openings in Connecticut as of August 2026, with employment types broken down into 100% Full Time. Highlights an 100% In-person job distribution, with an average salary of $122,496 per year, or $58.9 per hour.

Machine Learning Engineer

Sperry Rail, Inc.

Shelton, CT • On-site

Full-time

Posted 3 days ago

New


Sperry Rail Service rating

6.9

Company rating: 6.9 out of 10

Based on 8 frontline employees who took The Breakroom Quiz

372nd of 450 rated engineering


Job description

About Sperry:
Sperry Rail is on a mission-critical journey to revolutionize the Rail Flaw Detection industry. Through the continuous development of cutting-edge diagnostic technologies and AI-assisted analysis, we are transforming railway safety worldwide. Our global engineering teams work collaboratively to develop step-change technologies that define Sperry as the unparalleled market leader.
For nearly a century, we have repeatedly modernized and improved rail diagnostics through our relentless pursuit of improvement. Determined is an understatement. We are obsessed with advancing science and raising the bar on what's possible with our ever-improving suite of products and service offerings.
Emboldened through the shared values of honesty, accountability, passion, integrity, and teamwork, we are driven by the challenge and bridging concepts with fruition. Each technologist entering Sperry imprints themselves into our brand and further galvanizes a culture of innovation and advancement. Allow us to be clear, Thought Leaders are welcome!
We are agile and hungry and invite those with similar passions to join us in challenging the status quo and bringing new ideas to the market. Fast-paced, high-touch with a distinct sense of purpose. We offer more than a job; we offer an opportunity to be part of something different.
Role Summary
We are building a US data science team of three: a lead who owns risk analytics for our customers' track, a data scientist working on the quality of analyst decisions, and you. You are the engineer. What the other two build in notebooks, you turn into systems that run on a schedule, hold up under real data, and can be handed to someone else. That covers the full model lifecycle. Packaging and deployment, the pipelines that feed models, versioning of data and models together, monitoring for drift and degradation, retraining, and the plumbing that gets a result in front of the person who needs it. We are early enough that you get to choose most of this rather than inherit it. You will not be doing this on bare ground. A cloud engineering team across the US and UK looks after our AWS platform, networking, and security, and the UK engineering team runs the data platform and the inspection products. Your work sits on top of theirs, and getting that boundary right is part of the job. We hold years of ultrasonic, induction, and eddy current test data from non-stop inspection across North America. Volume is not the constraint here. Getting reliable, reproducible answers out of it is.
What We Expect From You
We expect an exceptional level of drive and ambition. You think beyond today's work to what the team and organization need next, champion bold ideas, and see them through. Your hunger is infectious - it inspires those around you to aim higher. You should be someone who puts the team first. You share credit openly, admit when you are wrong, and welcome feedback as an opportunity to grow. You are comfortable saying "I don't know" and asking for help when needed. This role requires a high degree of self-direction. You will manage complex work with minimal oversight, identify problems and solutions proactively, and may lead workstreams. You make well-reasoned technical decisions and escalate when there is genuine business or architectural impact. You should be able to quickly grasp complex problems that span multiple systems or domains. We expect you to design effective solutions for non-trivial requirements, identify root causes efficiently, and consider performance, scalability, and maintainability in your approach. You will be the person who insists that a result is reproducible. That is a temperament as much as a skill, and it is the main reason this seat exists as an engineering role rather than a third analyst.
Key Responsibilities
• Take models and analyses from prototype to production, and own them once they are there
• Build and maintain the data pipelines that feed models, working with large-scale rail inspection data including ultrasonic, electromagnetic, and operational sources
• Implement model and data versioning so that any result can be traced back to the code and data that produced it
• Monitor deployed models for drift, degradation, and data quality problems, and build the retraining paths that respond to them
• Build and maintain APIs and services that deliver model output to the people and systems that consume it
• Design and implement the compute and orchestration for training and inference workloads on AWS (S3, Lambda, Glue, Step Functions, SageMaker, or equivalents)
• Set the team's engineering standards: testing, code review, environments, CI/CD, and release practice
• Work with the cloud engineering team on the platform underneath, and with the UK data and platform teams on shared data sources
• Automate the manual steps between an idea and a running model, so the data scientists spend their time on method
• Write clean, tested, well-documented code following engineering best practices
• Participate in code reviews, sprint planning, and technical design discussions
• Document architecture decisions, runbooks, and operational procedures
Required Skills & Qualifications
• Strong proficiency in Python, including the scientific stack (NumPy, Pandas, Scikit-learn, or similar)
• Experience putting machine learning models or statistical analyses into production and keeping them running
• Experience building data pipelines and working with structured and unstructured data at scale
• Solid understanding of SQL and relational and non-relational databases
• Experience with AWS cloud services and cloud-native architecture
• Practical experience with containerization (Docker) and infrastructure-as-code
• Understanding of software engineering principles: testing, code quality, design patterns
• Familiarity with version control (Git), CI/CD pipelines, and agile development practices
• Strong problem-solving skills and ability to learn new technologies quickly
• Good communication skills - able to explain technical concepts to non-technical stakeholders
• A collaborative, team-first mindset aligned with our values of being Humble, Hungry, and Smart Qualifications and years of experience are indicative guidelines, not mandatory requirements. These criteria may be met through demonstrated competency or equivalent experience.
Desirable Skills
• Bachelor's degree in computer science, engineering, or a related technical field
• MLOps tooling: MLflow, SageMaker Pipelines, Kubeflow, DVC, Weights & Biases, or similar
• Workflow orchestration (Airflow, Dagster, Prefect, Step Functions)
• Observability and monitoring tooling (CloudWatch, Grafana, Datadog, or similar)
• Experience being the first engineer on a data science team
• Signal processing or work with sensor data
• Experience in rail testing, NDT, or sensor-based inspection industries (ultrasound, eddy current, electromagnetic, etc.)

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