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Remote Embedded Systems Engineer Jobs in Ohio (NOW HIRING)

For more than three decades, Strategic Data Systems (SDS) has been a software consultancy firm ... REMOTE EST/CST Years of Experience: 10+ What You'll Do Newline™ is an enterprise-grade embedded ...

C++ Tutor

Cincinnati, OH · Remote

$18 - $40/hr

Emphasizes understanding memory management principles and connects C++ programming to operating systems, embedded systems, and high-performance computing applications. * Curriculum Awareness ...

C++ Tutor

Akron, OH · Remote

$18 - $40/hr

Emphasizes understanding memory management principles and connects C++ programming to operating systems, embedded systems, and high-performance computing applications. * Curriculum Awareness ...

C++ Tutor

Columbus, OH · Remote

$18 - $40/hr

Emphasizes understanding memory management principles and connects C++ programming to operating systems, embedded systems, and high-performance computing applications. * Curriculum Awareness ...

C++ Tutor

Cleveland, OH · Remote

$18 - $40/hr

Emphasizes understanding memory management principles and connects C++ programming to operating systems, embedded systems, and high-performance computing applications. * Curriculum Awareness ...

You will work closely with software engineers, systems engineers, and government customers in an Agile environment embedded alongside a major defense prime * Identify performance bottlenecks and ...

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Remote Embedded Systems Engineer information

What are the key skills and qualifications needed to thrive as a Remote Embedded Systems Engineer, and why are they important?

To thrive as a Remote Embedded Systems Engineer, you need a solid background in electrical engineering, proficiency in C/C++ programming, and experience with embedded hardware and software design. Familiarity with development tools such as debuggers, oscilloscopes, version control systems (like Git), and RTOS platforms, as well as certifications like Certified Embedded Systems Engineer, are commonly required. Strong problem-solving abilities, self-motivation, and effective remote communication skills set top candidates apart in this role. These skills are essential for developing reliable, high-performance embedded solutions while collaborating efficiently in distributed teams.

How do Remote Embedded Systems Engineers typically collaborate with hardware teams when working off-site?

Remote Embedded Systems Engineers often collaborate with hardware teams through video conferencing, collaborative design tools, and remote access to development boards. Regular virtual meetings are scheduled for project updates, troubleshooting, and aligning on hardware-software integration requirements. To stay effective, engineers may use remote debugging tools and sometimes ship prototype hardware to their home office, ensuring they can test and validate firmware in real time. Clear documentation and proactive communication are essential for overcoming the physical distance and ensuring successful project outcomes.

What is a Remote Embedded Systems Engineer?

A Remote Embedded Systems Engineer is a professional who designs, develops, and maintains embedded systems—specialized computing systems that perform dedicated functions within larger mechanical or electrical systems—while working remotely. These engineers work with hardware and software, often programming microcontrollers or processors, to create solutions for products like smart devices, automotive systems, or industrial machines. Their remote role means they collaborate virtually with teams, using tools for code development, debugging, and communication. Strong knowledge of C/C++, Linux, and real-time operating systems (RTOS) is often required. Remote Embedded Systems Engineers play a crucial role in the growing fields of IoT, automation, and smart technologies.

What is the difference between Remote Embedded Systems Engineer vs Remote Firmware Developer?

AspectRemote Embedded Systems EngineerRemote Firmware Developer
Required CredentialsBachelor's in Electrical Engineering, Computer Engineering, or related field; knowledge of embedded C/C++Bachelor's in Computer Science, Electrical Engineering; proficiency in embedded C, assembly, and RTOS
Work EnvironmentDesigning and testing hardware-software integration, often in R&D labs or remote setupsDeveloping low-level code for hardware devices, often in embedded systems or IoT projects
Employer & Industry UsageElectronics, automotive, aerospace, IoT companiesConsumer electronics, industrial automation, IoT device manufacturers

While both roles involve working with embedded hardware and software, the Remote Embedded Systems Engineer typically focuses on system design, integration, and testing, whereas the Remote Firmware Developer specializes in writing low-level firmware code for specific hardware components. Both roles require similar technical skills and often overlap in industry applications.

What are the most commonly searched types of Embedded Systems Engineer jobs in Ohio? The most popular types of Embedded Systems Engineer jobs in Ohio are:
What are popular job titles related to Remote Embedded Systems Engineer jobs in Ohio? For Remote Embedded Systems Engineer jobs in Ohio, the most frequently searched job titles are:
What cities in Ohio are hiring for Remote Embedded Systems Engineer jobs? Cities in Ohio with the most Remote Embedded Systems Engineer job openings:
MLOps Engineer -- AI/ML Systems Deployment (TS/SCI Preferred)

MLOps Engineer -- AI/ML Systems Deployment (TS/SCI Preferred)

Rackner

Cincinnati, OH • On-site, Remote

Full-time

Medical, Dental, Vision, Life, Retirement, PTO

Posted 16 days ago


Job description

MLOps Engineer — AI/ML Systems Deployment
Location: Dayton, OH preferred
Work Arrangement: On-site preferred; remote may be considered for highly aligned, clearance-ready candidates able to support secure / CAC-enabled environments and travel as needed
Clearance: Active TS/SCI strongly preferred; active Secret may be considered for upgrade
Requirement: U.S. citizenship required

Build and Deploy Real-World AI Systems

Rackner is hiring an MLOps Engineer to move AI/ML systems from prototype → deployment → operational use in a secure, mission-focused environment.

This is not a research role—this is where models become reliable, repeatable, auditable systems that run in real-world conditions.

This role is ideal for engineers who want to:

  • Work across AI/ML, Kubernetes, infrastructure, and mission systems
  • Own deployed systems, not just experiments
  • Build high-demand MLOps expertise in secure and constrained environments
  • Deliver technology that is used, trusted, and operational

You will help operationalize AI/ML capabilities where reliability, performance, and trust matter most.

What You'll Do

Operationalize AI/ML Systems

  • Deploy AI/ML models and ML-enabled applications into secure, real-world environments
  • Move workflows from experimentation into containerized, repeatable deployment pipelines
  • Support batch and real-time inference architectures
  • Bridge model development, software engineering, and platform operations

Own the ML Lifecycle

  • Build and operate production-grade ML pipelines
  • Support model versioning, lineage, reproducibility, and lifecycle governance
  • Work with tools such as MLflow, Kubeflow, Airflow, Argo, ClearML, or similar platforms

Build Cloud-Native ML Infrastructure

  • Deploy and support Kubernetes-based ML workloads
  • Containerize models, pipelines, and services using Docker or similar tools
  • Support CI/CD, automation, and repeatable deployment patterns for AI/ML systems

Engineer for Reliability

  • Monitor model and system performance after deployment
  • Support observability using tools such as Prometheus, Grafana, OpenTelemetry, or similar
  • Detect and resolve issues related to latency, reliability, drift, degradation, or resource usage

Support Secure and Constrained Environments

  • Help deploy AI/ML systems in secure, CAC-enabled, or constrained environments
  • Support limited compute, restricted data, degraded connectivity, and other operational constraints
  • Optimize systems for reliability and usability beyond ideal lab conditions

Create Repeatable Systems

  • Develop runbooks, deployment documentation, and operational playbooks
  • Build systems that can be understood, maintained, and operated by others

What You Bring

Core Experience

  • U.S. citizenship
  • Background in deploying ML systems, AI-enabled applications, or production software
  • Strong programming skills in Python
  • Hands-on work with Docker, containers, or containerized deployment
  • Familiarity with Kubernetes or cloud-native environments
  • Understanding of CI/CD, automation, or pipeline-based delivery
  • Clear communication of technical decisions, tradeoffs, and ownership
  • Ability to operate in a CAC-enabled or secure environment

Preferred Qualifications

  • Active TS/SCI clearance
  • Active Secret clearance with eligibility for upgrade
  • Familiarity with ML lifecycle tools such as MLflow, Kubeflow, Airflow, Argo, ClearML, or similar
  • Background in model serving, inference APIs, or deploying ML systems in production
  • Exposure to LLMs, transformer-based models, computer vision, NLP, or applied AI solutions
  • Hands-on work with Kubernetes-based ML workloads
  • Knowledge of observability and monitoring tools such as Prometheus, Grafana, or OpenTelemetry
  • Experience in DoD, defense, intelligence, regulated, or mission-critical settings
  • Work in edge, offline, air-gapped, low-bandwidth, D-DIL, or limited-compute environments

Clearance Requirements

  • Active TS/SCI clearance strongly preferred
  • Candidates with an active Secret clearance may be considered and supported for upgrade
  • Candidates without an active clearance must be:
    • U.S. citizens
    • eligible to obtain and maintain a clearance
    • able to work in a CAC-enabled or secure environment

Note: Start timelines and work scope may vary depending on clearance status and program requirements

Who We Are

Rackner is a software consultancy that builds cloud-native solutions for startups, enterprises, and the public sector. We are an energetic, growing team focused on solving complex problems through:

  • Distributed systems
  • DevSecOps
  • AI/ML
  • Cloud-native architecture

Our approach is cloud-first, cost-effective, and outcome-driven, delivering systems that scale and perform in real-world environments.

Benefits & Perks

  • 100% covered certifications & training aligned to your role
  • 401(k) with 100% match up to 6%
  • Highly competitive PTO
  • Comprehensive Medical, Dental, Vision coverage
  • Life Insurance + Short & Long-Term Disability
  • Home office & equipment plan
  • Industry-leading weekly pay schedule

Apply

If you are an engineer who wants to move from building models or platforms to owning deployed AI/ML systems, we would like to connect.