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Remote Machine Learning Robotics Jobs (NOW HIRING)

... robotics/AI). Our tight knit hardware and software team is comprised of experts in product and UX development, biomechanics, algorithms and machine learning, software platform and experience ...

Job Title Machine Learning Engineer Location Remote Rate $48/hr on W2 Must Haves: Neaural networks NLP Python AZURE Pytorch or tensorflow Machine Learning Engineer / AI Engineer Role Role Overview ...

Robotics, Artificial Intelligence, Machine Learning, Perception, Modeling, Simulation, Applied Mathematics, Probabilistic Modeling and Inference or related areas - Collaborating with engineering and ...

Robotics, Artificial Intelligence, Machine Learning, Perception, Modeling, Simulation, Applied Mathematics, Probabilistic Modeling and Inference or related areas - Collaborating with engineering and ...

Vienna, VA / Chantilly, VA (Hybrid / Flexible Remote options available) Responsibilities * Prototype to Production: Support the full machine learning lifecycle, taking computer vision models from ...

We are looking for a Machine Learning Engineer to help us design and deliver CX solutions that provide our clients with a beautiful customer journey that achieves results. At PTP we value aptitude ...

Senior Machine Learning Engineer

Boston, MA · On-site +1

$161K - $246K/yr

Overview: The ASUS Robotics & AI Center is seeking a Senior Machine Learning Engineer to join our global research and development team. This role centers on leading the design and delivery of ...

Remote We are seeking an Applied Machine Learning Engineer with a strong focus on practical solutions and software development (ability to work on both open-ended research problems and production ...

We're seeking a skilled Machine Learning Engineer to build and deploy production ML systems for the ... Onsite / Remote / Flexible work arrangements or hybrid options (position dependent) * Relocation ...

Showing results 41-60

Remote Machine Learning Robotics information

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$32.5K

$63.8K

$99.5K

How much do remote machine learning robotics jobs pay per year?

As of Sep 14, 2026, the average yearly pay for remote machine learning robotics in the United States is $63,781.00, according to ZipRecruiter salary data. Most workers in this role earn between $48,000.00 and $75,000.00 per year, depending on experience, location, and employer.

What is a remote machine learning robotics job?

A Remote Machine Learning Robotics job involves developing and implementing machine learning algorithms to control and improve robotic systems, all while working from a remote location. Professionals in this field use artificial intelligence techniques to enable robots to learn from data and adapt to new tasks. They collaborate with teams virtually, leveraging cloud-based tools and simulation environments to design, test, and deploy robotic solutions. This role typically requires strong programming skills, knowledge of robotics frameworks, and experience with machine learning models.

What are the key skills and qualifications needed to thrive as a remote machine learning robotics engineer?

To thrive as a Remote Machine Learning Robotics Engineer, you need a solid background in robotics, machine learning algorithms, programming (Python, C++), and typically a degree in computer science, robotics, or a related field. Familiarity with robotics frameworks (like ROS), machine learning libraries (such as TensorFlow or PyTorch), and experience with cloud platforms or remote collaboration tools are highly valued. Strong problem-solving abilities, initiative, and effective remote communication skills help you excel in distributed teams. These competencies enable you to develop intelligent robotic systems efficiently, collaborate across locations, and drive innovation in a rapidly evolving field.

How do remote machine learning robotics professionals typically collaborate with hardware teams when working off-site?

Remote machine learning robotics professionals often collaborate closely with hardware teams through regular virtual meetings, shared documentation, and cloud-based development environments. They use simulation tools to test algorithms before deployment and rely on video calls or live streams to observe hardware tests in real time. Effective communication and detailed feedback are essential to ensure that software and hardware integration runs smoothly, despite working from different locations. This collaborative approach helps address issues quickly and keeps projects on track.

What is the difference between Remote Machine Learning Robotics vs Remote Data Scientist?

AspectRemote Machine Learning RoboticsRemote Data Scientist
Required CredentialsDegree in Robotics, Computer Science, or related fields; experience with ML algorithms and robotics platformsDegree in Data Science, Statistics, or related fields; proficiency in ML, statistics, and programming
Work EnvironmentHands-on with robotics hardware, simulation environments, and software developmentData analysis, modeling, and visualization primarily on software platforms
Employer & Industry UsageRobotics companies, manufacturing, autonomous vehicles, research labsTech firms, finance, healthcare, research institutions

Remote Machine Learning Robotics focuses on developing intelligent systems that integrate robotics hardware with machine learning algorithms, often requiring hands-on hardware work. In contrast, Remote Data Scientists primarily analyze data and build models using software tools. Both roles involve ML expertise but differ in work environment and industry applications.

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What cities are hiring for Remote Machine Learning Robotics jobs?

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What are the most commonly searched types of Machine Learning Robotics jobs?

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Infographic showing various Remote Machine Learning Robotics job openings in the United States as of September 2026, with employment types broken down into 1% Internship, 1% As Needed, 74% Full Time, 22% Part Time, and 2% Contract. Highlights an 82% Physical, 2% Hybrid, and 16% Remote job distribution, with an average salary of $63,781 per year, or $30.7 per hour.

Machine Learning Engineer

Los Angeles, CA • On-site, Remote

Full-time

Medical, Dental, Vision, PTO

Posted 16 days ago


Key responsibilities

  • Design and implement machine learning models for time-series and sequential data

  • Develop algorithms that extract structured signals and latent variables from noisy sensor inputs

  • Build and optimize real-time inference pipelines with latency and compute constraints


Job description

About Us

LiquidXR is an expanding, well-funded early-stage company building a platform to digitize human movement. We are creating next-gen wearables using proprietary MetalGel sensor technology, capturing and feeding movement data to our machine learning-enhanced algorithms and SDKs, which connect to any modern computer or development environment. We are partnered with several high-quality companies co-developing products using our tech, and we are advancing our platform to enable all types of body movement data capture and analysis across multiple areas of use (sports performance, wellness, clinical/healthcare, gaming/XR, and robotics/AI). 

Our tight knit hardware and software team is comprised of experts in product and UX development, biomechanics, algorithms and machine learning, software platform and experience development, electronic engineering, and soft goods industrial design. Individually and collectively, this is a team who gets things done and among us, countless products have been launched worldwide. We are passionate about creating a transformative platform and we are fortunate to work on cool products using our tech along the way. 

The Role

We are seeking a Machine Learning Engineer to develop advanced models for extracting meaningful signals from multimodal time-series data. This role focuses on building robust, real-time algorithms that operate on noisy, high-frequency sensor inputs.

You will work on problems involving temporal modeling, representation learning, and inference under real-world constraints.


What You'll Do
  • Design and implement machine learning models for time-series and sequential data

  • Develop algorithms that extract structured signals and latent variables from noisy sensor inputs

  • Build and optimize real-time inference pipelines with latency and compute constraints

  • Explore and apply architectures such as:

  • Temporal convolutional networks (TCNs)

  • RNNs / LSTMs / GRUs

  • Transformer-based sequence models

  • Work on multi-modal learning and sensor fusion

  • Replace or augment classical signal processing pipelines with learned models

  • Design training strategies for:

  • Windowed and streaming data

  • Weakly labeled or partially observed datasets

  • Multi-task learning setups

    • Evaluate models using both statistical metrics and application-driven performance criteria

    • Collaborate with cross-functional teams to bring models from research to production


What You'll Bring 
  • Strong experience with machine learning for time-series data

  • Experience with Transfer learning and knowledge distillation techniques

  • Proficiency in Python and PyTorch (or similar frameworks)

  • Solid understanding of signal processing fundamentals (filtering, noise, frequency domain)

  • Experience working with real-world, noisy datasets

    • Experience building or deploying low-latency / real-time systems

  • Experience with sensor data (e.g., IMUs)

  • Familiarity with sensor fusion methods (e.g., Kalman filters, probabilistic models)

  • Experience with multi-modal or multi-task learning

  • Exposure to embedded or edge deployment constraints

  • Background in applied domains involving physical systems or human data

  • BSc or MSc degree in quantitative fields (e.g., computer science, engineering, physics, applied math)

Who You Are
  • An Owner: You possess a powerful ownership mindset and take full accountability for your projects from concept to completion

  • A Proactive Driver: You are a self-starter who can "catch the vision and run with it." You thrive with autonomy and are skilled at moving projects forward with minimal oversight

  • A Team Player: You are a natural collaborator who communicates clearly and works effectively with cross-functional teams to achieve shared goals

  • Adaptable and Resilient: You excel at managing multiple priorities without sacrificing quality You see the challenges of a startup environment as opportunities

  • Detail-Oriented: You have a keen eye for detail and are committed to producing high-quality, well-documented work

  • Someone with the ability to reason about temporal structure, causality, and latency

  • Have strong intuition for modeling tradeoffs vs. deployment constraints

  • Comfortable working with imperfect, real-world data

  • Have end-to-end ownership, from modeling to validation to deployment

Compensation, Benefits, Hours 

This is a full-time employee position, working remotely or in our Los Angeles office. Compensation will be commensurate with experience and will be competitive with the market. You will also participate in the employee stock option program. You will be provided health care benefits (currently, gold PPO coverage with Blue Shield, as well as dental and vision) starting within 30 days of employment. We are an open PTO company. Occasional travel may be required domestically and internationally. 

DISCLAIMER

We are an affirmative action, equal opportunity employer. Our employment decisions are made without regard to race, color, religion, gender, gender identity, national origin, age, disability, marital status, veteran or military status, or any other legally protected status. 

In accordance with the ADA, employees must perform the essential duties and responsibilities efficiently and accurately, with or without reasonable accommodation. The above statements are intended to describe the general nature and level of work being performed by employees assigned to this classification. They are not intended to be construed as an exhaustive list of all responsibilities, duties and/or skills required of all personnel so classified. 

LI-DNI