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Internship Remote Plc Programming Jobs in Michigan

... remote and or office within the Cleveland area. Requirements Equipment Design: Control Panels / Motor Control / Field Instrumentation (Schematics / Layout / Riser / BOM) PLC Programming: Rockwell ...

Screens, PLC Logic and entering Descriptions * Assist in debug, as-builts and field installation #LI-Remote Skills / Qualifications Skills: * A Bachelor's Degree in Electrical/Controls Engineering ...

Electrical Controls Engineer II

Warren, MI · Remote

$75K - $100K/yr

Create system map layouts, sequence of operations, drawing packages, PLC logic, and HMI screens ... Launch and Standby support #LI-Remote Skills / Qualifications Qualifications: * Education:

$18 - $50/hr

Comfortable working in a fully remote environment within the United States of America ... Familiarity with digital engineering, PLM, or engineering data management concepts is a plus.

$18 - $50/hr

Comfortable working in a fully remote environment within the United States of America ... Familiarity with digital engineering, PLM, or engineering data management concepts is a plus.

$18 - $50/hr

Comfortable working in a fully remote environment within the United States of America ... Familiarity with digital engineering, PLM, or engineering data management concepts is a plus.

$18 - $50/hr

Comfortable working in a fully remote environment within the United States of America ... Familiarity with digital engineering, PLM, or engineering data management concepts is a plus.

$18 - $50/hr

Comfortable working in a fully remote environment within the United States of America ... Familiarity with digital engineering, PLM, or engineering data management concepts is a plus.

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Internship Remote Plc Programming information

What is an internship in remote PLC programming?

An Internship in Remote PLC Programming is a temporary, entry-level position where interns learn to program, test, and troubleshoot Programmable Logic Controllers (PLCs) using remote tools and software. Interns gain practical experience in industrial automation, working with real-world control systems from a distance, often collaborating with engineering teams via online platforms. These internships typically involve tasks such as writing ladder logic, monitoring industrial processes, and assisting with system integration projects, all performed remotely. This role is ideal for students or recent graduates in electrical, automation, or computer engineering who want hands-on experience in automation and control industries.

What are the key skills and qualifications needed to thrive in a remote PLC programming internship?

To thrive as a Remote PLC Programming Intern, you need a foundational understanding of electrical engineering, automation concepts, and programming logic, often supported by coursework or a related degree in engineering or computer science. Familiarity with PLC software platforms such as Siemens TIA Portal, Allen-Bradley RSLogix, and simulation tools is typically required. Strong problem-solving skills, attention to detail, and effective remote communication abilities help interns stand out in this role. These skills and qualities are crucial for accurately developing, troubleshooting, and collaborating on automation solutions in a remote setting.

What are some common challenges faced during a remote PLC programming internship, and how can I effectively overcome them?

As a remote PLC programming intern, you may encounter challenges such as limited hands-on access to physical hardware, communication gaps with your team, and the need to quickly adapt to various PLC platforms and simulation tools. To overcome these, actively participate in virtual meetings, make use of online PLC simulators for practice, and seek frequent feedback from mentors. Building strong digital communication skills and proactively asking questions will help you stay engaged and contribute effectively, even at a distance.

What is the difference between Internship Remote Plc Programming vs Remote Automation Technician?

AspectInternship Remote Plc ProgrammingRemote Automation Technician
Required CredentialsTypically students or entry-level with basic PLC knowledgeTechnical certifications or experience in automation systems
Work EnvironmentRemote, project-based, often educationalRemote or on-site, troubleshooting and maintenance
Industry UsageTraining, learning, entry-level projectsOperational support, system repairs

Internship Remote Plc Programming focuses on learning and developing PLC coding skills in a remote setting, often for students or beginners. In contrast, Remote Automation Technicians handle ongoing system support and troubleshooting, requiring more technical experience. Both roles are essential in automation but differ in experience level and job responsibilities.

What are the most commonly searched types of Remote Plc Programming jobs in Michigan?

The most popular types of Remote Plc Programming jobs in Michigan are:

What cities in Michigan are hiring for Internship Remote Plc Programming jobs?

Cities in Michigan with the most Internship Remote Plc Programming job openings:

Infographic showing various Internship Remote Plc Programming job openings in Michigan as of September 2026, with employment types broken down into 2% Internship, 81% Full Time, 10% Part Time, 6% Contract, and 1% Nights. Highlights an 84% Physical, 4% Hybrid, and 12% Remote job distribution.

Senior Controls Engineer

Troy, MI • On-site, Remote

$91K - $121K/yr

Full-time

Posted 10 days ago


Job description

Position Summary
The Senior Controls Engineer is responsible for the design, development, implementation, and optimization of manufacturing control systems and automation solutions supporting automotive production operations. This role leads capital equipment projects from concept through launch, ensuring processes meet safety, quality, productivity, scrap, and labor objectives. The Senior Controls Engineer serves as a technical expert in PLC programming, robotics integration, process controls, and continuous improvement initiatives. This position also supports new product launches, equipment upgrades, troubleshooting, and plant automation strategies. This scope aligns with the existing IAC role description, which includes managing capital equipment processes, establishing controls, documenting processes, participating in PFMEA activities, and leading continuous improvement efforts.
Essential Responsibilities
  • Lead the design, programming, commissioning, and validation of automated manufacturing equipment and control systems.
  • Develop and modify PLC, HMI, servo, vision, and robotic control programs.
  • Support new program launches by ensuring all controls systems meet project timing, quality, and production requirements.
  • Establish process parameters, equipment controls, and monitoring systems to maintain product quality and operational performance.
  • Troubleshoot and resolve electrical, controls, automation, and process-related issues.
  • Collaborate with manufacturing, quality, maintenance, product engineering, and suppliers to improve equipment performance and process capability.
  • Lead root cause analysis and corrective actions for equipment downtime and quality concerns.
  • Develop and maintain controls documentation including:
    • Electrical schematics
    • Network architecture
    • PLC/HMI backups
    • Process control plans
    • Equipment standards
  • Participate in PFMEA and manufacturing feasibility reviews.
  • Support capital equipment sourcing, installation, validation, and startup activities.
  • Train maintenance and production personnel on equipment operation, troubleshooting, and preventive maintenance.
  • Drive continuous improvement initiatives focused on:
    • OEE improvement
    • Scrap reduction
    • Cycle-time reduction
    • Cost savings
    • Automation expansion
  • Ensure compliance with all safety, environmental, and customer requirements.
Education
  • Bachelor's Degree in Electrical Engineering, Controls Engineering, Mechatronics Engineering, or related technical field.
Experience
  • 7-10 years of controls engineering experience in a manufacturing environment.
  • Automotive Tier 1 supplier experience strongly preferred.
  • Experience supporting automated assembly, injection molding, foam, or interior trim manufacturing processes preferred.
Technical Skills
  • PLC Programming:
    • Allen-Bradley
    • Siemens
    • Rockwell
  • Programming remote IO using remote blocks:
    • Rockwell/Balluff
  • Industrial Robotics:
    • FANUC
    • ABB
  • Industrial Networks:
    • EtherNet/IP
    • Profibus/Serial
    • IO Link
  • Electrical controls design and troubleshooting
  • Safety systems and machine safeguarding
  • Dynamic Robotic Pathing
  • Cybersecurity for OT Environments
  • Knowledge in how to safety deploy/manage NAT VPN Setup for Tooling Machines
  • Allen-Bradley ControlLogix/CompactLogix, Siemens S7/TIA Portal, Beckhoff TwinCAT; structured programming, sequencing, interlocks, and fault recovery
  • AMRs/AGCs
  • Vidi Cognex Vision
  • Simulation and virtual commissioning: Digital twins, PLC simulation, robot simulation, and offline commissioning.
  • MES Traceability
  • Python, C#, C++, or JavaScript
  • SQL, REST APIs, MQTT, OPC UA, and historian connectivity
  • Euromap Data Transfer
  • Ignition
  • PowerBI
Competencies
  • Strong project management skills
  • Excellent analytical and troubleshooting abilities
  • Ability to lead cross-functional teams
  • Effective written and verbal communication
  • Customer-focused mindset
  • Continuous improvement orientation
  • Ability to manage multiple projects simultaneously
Physical Requirements
  • Ability to work in manufacturing and production environments.
  • Occasional lifting of up to 25 pounds.
  • Ability to travel to plants, suppliers, and customer locations as required.
Preferred Qualifications
  • Professional Engineer (PE) certification
  • Certified Automation Professional (CAP)
  • Experience with Industry 4.0 technologies, IIoT, and advanced manufacturing systems
  • Experience supporting global manufacturing launches
Key Performance Indicators (KPIs)
  • Equipment uptime/OEE
  • Launch timing performance
  • Scrap reduction
  • Process capability improvements
  • Safety performance
  • Automation project completion
  • Manufacturing cost reductions