POSTING ACTIVE · REQ-C49A7 · FY26.Q3

Software Engineer - Robotic Controls

[ COMPANY ]
[ LOCATION ]
[ POSTED ]
[ REQ ID ]
[ COMPENSATION RANGE · ANNUAL · BASE ]
$200,000 – $300,000USD
MIDPOINT
$250,000
SPREAD
$100,000
LEVEL
MID

TECHNICAL STACK · 2 TAGS

§ 01

ABOUT 1X

We're building humanoid robots that work in home - doing the chores, handling the tasks, and giving people their time back. Simple, but it's not.

To do this right, we have to solve robotics, AI, manufacturing - at the same time, at scale, in a form factor that has to be safe enough to live with your family. If you're inspired by this, you'll thrive here. We've been at this since 2014 and we're at the point where the hard problems are behind us and the hard work is in front of us.

NEO is our flagship - a home robot designed to move, learn, and operate in the real world alongside real people. We're not demoing it - we're shipping it. We're excited to meet you, if this excites you.

If you've spent your career working on problems that matter and want to see them actually reach the world - this is that moment. We're scaling, we're hiring with intention, and we need people who want to build something that will genuinely change how humans spend their time - safely creating abundance for all.

§ 02

ABOUT THE TEAM

The Motion team enables NEO to move through and interact with the world. We build the perception NEO needs to understand its surroundings and locomote through any environment, and the control that lets it use its whole body to accomplish real tasks - crawling, bracing, climbing, lifting with more than just its arms. Because NEO operates around people, safe and compliant motion is a design constraint on everything we ship, not a feature layered on top.

§ 03

YOUR CHARTER

Build the foundation that NEO's whole-body control and manipulation strategies stand on. You will own state estimation, kinematics and robot models, system identification, and the sensor and signal conditioning underneath them, and define the interfaces the rest of the motion stack is built on. When a controller or a learned policy commands NEO, it is your estimates, models, and limits that it is trusting.

§ 04

KEY OUTCOMES

  • State Estimation: Ship floating-base pose and velocity, joint state, contact, and force/torque estimation that holds up through sensor noise, sensor dropout, and ambiguous contact signals.

  • Kinematics and Robot Models: Own the robot models, frames, inverse kinematics, and command trajectory generation that downstream consumers resolve against, exposed through real-time-safe APIs and bindings.

  • System Identification: Characterize actuators, tendons, and transmissions - friction, cogging, stiffness, slack, stretch - so models track real hardware unit to unit instead of being tuned around.

  • Sensing and Signal Conditioning: Run sensor and modality trade studies for state estimation, then own the path from raw sensor to trusted signal - filtering, anti-aliasing, validity checks, temporal consistency.

  • Diagnostics and Fault Response: Build the monitoring, limits, and fault reactions that let a robot detect a degraded joint or a thermal limit and degrade safely rather than fail unpredictably.

  • Calibration and Bring-Up: Partner with production and service teams so calibration and bring-up procedures are correct, implemented, and actually followed across the line, the field, and each new robot generation.

§ 05

KEY COMPETENCIES

  • State Estimation Depth: Designs and tunes filters and observers against real sensor data, reasoning about bias observability, innovation gating, and graceful degradation when a sensor drops out.

  • Comfort with Uncertainty: Builds estimators and models that hold up across a fleet where every robot differs and drifts, and quantifies confidence rather than assuming a golden unit.

  • Kinematics and Dynamics: Fluent in rigid body kinematics, frame conventions, and robot modeling, and comfortable working through model libraries and URDF-based pipelines.

  • Signal and Systems Instinct: Treats bandwidth, latency, aliasing, noise, and loop timing as first-class design constraints rather than tuning knobs discovered late.

  • Root-Cause Analysis: Digs through logged robot data to find why something actually failed, and works with the mechanical and electrical teams to separate software faults from hardware ones.

  • Technical Direction: Sets the approach for a problem area, defends tradeoffs across sensing, actuation, and compute, and partners with the hardware teams upstream and the teams consuming it downstream.

§ 06

MINIMUM REQUIREMENTS

  • Proven track record of shipping state estimation or control software on physical robots or comparable electromechanical systems

  • Deep experience implementing and tuning state estimators such as EKF, UKF, invariant, or complementary filters against real, noisy sensor data from hardware that varies unit to unit

  • Strong applied foundation in rigid body kinematics, frame transforms, and inverse kinematics and dynamics

  • Hands-on experience with system identification and calibration of actuators, transmissions, or sensors

  • High proficiency writing production-quality real-time C++ on Linux, with Python for tooling and analysis

  • 5+ years of relevant industry experience, or an advanced degree plus equivalent hands-on experience

§ 07

PREFERRED SKILLS

  • Background in tendon-driven or cable-driven actuation and dexterous end-effectors, including slack, stretch, and non-collocated sensing

  • Experience with optimal control methods such as convex optimization, model predictive control, or trajectory optimization

  • Experience fusing exteroceptive estimation such as visual-inertial odometry into a floating-base estimator

  • Familiarity with real-time transport and fieldbus protocols such as EtherCAT or CAN

  • Hands-on experience bringing up robot hardware from scratch, or working closely with firmware and electrical teams at the hardware-software boundary

§ 08

COMPENSATION

  • Salary Range: $200,000 - $300,000 + Equity

§ 09

BENEFITS

  • Comprehensive medical, dental, and vision coverage

  • Generous paid time off, company holidays, and parental leave

  • 401(k) plan with company match (100% on the first 3% of contributions, 50% on the next 2%)

  • Flexible Spending Accounts (FSA) and Health Savings Accounts (HSA) options

  • Commuter benefits (transit and parking)

  • Short-term and long-term disability, and life insurance

  • Employee Assistance Program (EAP) for mental health, financial, and personal support

  • Onsite snacks and catered lunches

§ 10

REQUIREMENTS

Preferred Skills

  • Background in tendon-driven or cable-driven actuation and dexterous end-effectors, including slack, stretch, and non-collocated sensing
  • Experience with optimal control methods such as convex optimization, model predictive control, or trajectory optimization
  • Experience fusing exteroceptive estimation such as visual-inertial odometry into a floating-base estimator
  • Familiarity with real-time transport and fieldbus protocols such as EtherCAT or CAN
  • Hands-on experience bringing up robot hardware from scratch, or working closely with firmware and electrical teams at the hardware-software boundary Compensation
  • Salary Range: $200,000 - $300,000 + Equity
§ 11

NICE TO HAVE

Description

  • Background in tendon-driven or cable-driven actuation and dexterous end-effectors, including slack, stretch, and non-collocated sensing
  • Experience with optimal control methods such as convex optimization, model predictive control, or trajectory optimization
  • Experience fusing exteroceptive estimation such as visual-inertial odometry into a floating-base estimator
  • Familiarity with real-time transport and fieldbus protocols such as EtherCAT or CAN
  • Hands-on experience bringing up robot hardware from scratch, or working closely with firmware and electrical teams at the hardware-software boundary Compensation
  • Salary Range: $200,000 - $300,000 + Equity

QUESTIONS AND ANSWERS

How much does the Software Engineer - Robotic Controls at 1X Technologies pay?
The posting lists a range of $200K–$300K per year. Ranges reflect what 1X Technologies publicly declared on the source posting.
Where is this Software Engineer - Robotic Controls role based?
The role is based in San Carlos, CA.
What experience does 1X Technologies expect for this role?
The posting is tagged as a mid-level role, typically 3+ years of experience. Check the requirements section for specifics.
Where is 1X Technologies headquartered?
1X Technologies is headquartered in Moss, Norway.
How was this posting sourced?
This role was pulled directly from 1X Technologies's Ashby careers site. Apply links open in the employer's own ATS — no reposts or aggregator middleware.
[ APPLICATION ROUTE ]ASHBY · External ATS

Apply links open in the employer's official ATS. Always verify recruitment messages on the company's careers page before sharing personal information.

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