Robotics Middleware Engineer (human)

Posted 19 Days Ago
Be an Early Applicant
4 Locations
In-Office
Entry level
Robotics
The Role
Own and integrate the robotics middleware layer across ROS 2, OROCOS RTT, Apex.OS and DDS stacks. Implement sensor drivers, ros2_control compositions, DDS QoS tuning, Nav2 and launch architectures, deterministic hard-RT components, zero-copy IPC, and cross-middleware interface coherence for production robot platforms.
Summary Generated by Built In
Your Mission & Challenges
  • You will own the middleware integration layer for the NEURA Core Robot Software department, spanning the full robotics middleware spectrum with applications ranging from real-time control to fleet messaging. Production and cognitive robotics increasingly need multiple middleware paradigms running side-by-side.

  • ROS 2 stack: End-to-end responsibility for the ROS 2 layer across all robot platforms: sensor driver nodes, ros2_control YAML composition, DDS QoS tuning, Nav2 configuration, launch system architecture, and the diagnostic framework. Different release versions starting from Humble and Jazzy are maintained for both long-term and short-term migration cycles.

  • OROCOS RTT integration: Ownership of the port-based hard-RT component layer behind the dynamics and whole-body control solver pipelines, where execution needs to stay deterministic down to sub-millisecond precision — including an application and service interface which serves as a hardware abstraction layer.

  • Apex.OS / Apex.Middleware: This covers the full path from a standard ROS 2 development setup to a safety-ready Apex.OS deployment. This involves applying Apex.OS with its ISO 26262 ASIL-D certification for providing a deterministic, safety-certifiable ROS 2 runtime for any product line that needs to meet functional safety requirements.

  • DDS infrastructure: Depending on platform or customer context, different variants and versions of FastDDS, Cyclone DDS, and RTI Connext need to be integrated, extended or bridged. The depth requires understanding how QoS choices play out at the RTPS wire level, how network address schemes and discovery methods apply in real network conditions, and where fragmentation and reliability semantics matter in practice.

  • Eclipse Zenoh: The integration of new Zenoh-driven systems in local or wide area networks involves bridging to an existing multi-middleware stack, verifying requirements, and establishing a stable integration.

  • Zero-copy IPC: For single host contexts, use zero-copy transport via Iceoryx2, rmw_iceoryx2 for ROS 2, or any of the other middleware's shared memory transport as a means to establish inter-process communication (IPC), such as for 1 kHz real-time data exchange or bridging different software domains, avoiding any communication overhead.

  • Managing cross-middleware interface coherence: Robot state and command contracts need to behave consistently across all middleware surfaces the stack exposes. Keeping those contracts aligned as the system evolves is an ongoing responsibility. This also involves harmonizing the use of timestamped sensor streams, multi-modal observations, port assignments, and topic type schemes across stacks so both the end-to-end data plane and the ecosystem remain coherent.

What we can look forward to
  • C++ depth with real-time-safe patterns — lock-free queues, zero-copy semantics, allocation discipline, RT-safe logging.

  • Operational understanding of how middleware QoS settings behave at the wire-protocol level — not just configuration syntax. Comfortable reasoning about reliability, durability, history depth, fragmentation, discovery, and the failure modes each produces under load.

  • Production experience integrating middleware into a real-time robot control loop with deterministic timing requirements.

  • Production hands-on in AT LEAST ONE of the four core middleware paradigms (treated as parallel valid entry paths): (a) ROS 2 with ros2_control hardware interface authoring and lifecycle node design (Jazzy or Humble); (b) OROCOS RTT — component authoring, port-based composition, hard-RT deployment; (c) Apex.OS / Apex.Middleware — deterministic deployment, especially in automotive or industrial SIL contexts; (d) direct DDS implementation work — FastDDS, Cyclone DDS, or RTI Connext at the configuration-and-tuning level (not consumer-of-defaults), including QoS profile design for production deployments.

Nice to Have
  • Hands-on across MORE THAN ONE of the four paradigms above — multi-middleware experience is the role's distinguishing competence, not a baseline requirement.

  • Eclipse Zenoh for fleet-scale distributed messaging or edge scenarios.

  • Iceoryx or alternative zero-copy IPC integration.

  • Multi-middleware bridging patterns: ros1_bridge, OROCOS-ROS2 component bridging, or custom abstraction layers.

  • DDS Security plug-ins (authentication, access control, cryptographic transformation) for SIL-grade deployments.

  • Open-source contributions to any of the major middleware ecosystems (ROS 2 core, OROCOS Toolchain, Apex.OS, eProsima FastDDS, Eclipse Cyclone DDS, RTI Connext community).

Skills Required

  • Production experience integrating middleware into a real-time robot control loop with deterministic timing requirements
  • Strong C++ skills with real-time-safe patterns (lock-free queues, zero-copy semantics, allocation discipline, RT-safe logging)
  • End-to-end responsibility for ROS 2 layer: sensor driver nodes, ros2_control YAML composition, Nav2 configuration, launch system architecture, diagnostics
  • Hands-on experience with at least ONE core middleware paradigm: (a) ROS 2 with ros2_control, (b) OROCOS RTT, (c) Apex.OS / Apex.Middleware, or (d) direct DDS implementation (FastDDS/Cyclone/RTI Connext)
  • OROCOS RTT integration and port-based hard-RT component development for sub-millisecond deterministic execution
  • Apex.OS / Apex.Middleware familiarity for safety-ready deterministic deployments (ISO 26262 / ASIL contexts)
  • Deep understanding of DDS infrastructure, QoS profiling, RTPS wire-level behavior, discovery, fragmentation, reliability, and production tuning
  • Zero-copy IPC experience (Iceoryx2, rmw_iceoryx2 or equivalent) for high-rate intra-host communication
  • Ability to manage cross-middleware interface coherence: timestamping, topic/type schemes, port assignments, and consistent robot state/command contracts
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The Company
HQ: Metzingen
180 Employees
Year Founded: 2019

What We Do

NEURA Robotics is a German high-tech company founded in 2019 in Metzingen near Stuttgart with the vision to revolutionize the world of robotics. More than 180 team members from over 30 countries are working on advanced technologies in the fields of environmental perception, drive and control technology, material science, mechanical design, and artificial intelligence. We are expanding the cognitive capabilities of robots and make breakthrough advances in a variety of areas to bring robots and humans closer together, making many areas of work more attractive, creative, and social again. That's why everything we do runs under the guiding principle "we serve humanity". In a very short period of time, NEURA Robotics has developed robots and technologies that are characterized above all by their outstanding performance as well as safe and human-centred way of working. In this way, a wide variety of application fields can be covered, from intelligent production to medical technology. All major robot components are developed and designed in-house. Imprint: https://www.neura-robotics.com/legal Privacy: https://www.neura-robotics.com/privacy

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