Full-Time

Senior Machine Learning Operations Engineer

ZeroMark

ZeroMark

11-50 employees

AI-powered counter-drone rifle fire control

No salary listed

New York, NY, USA

In Person

Category
AI & Machine Learning (1)
Required Skills
Scikit-learn
Kubernetes
MLOps
Microsoft Azure
Python
Tensorflow
Neural Networks
Pytorch
Machine Learning
Docker
AWS
C/C++
Reinforcement Learning
Google Cloud Platform

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Requirements
  • Education: Bachelor's or Master's degree in Computer Science, Machine Learning, Artificial Intelligence, or a related quantitative field.
  • Experience: 5+ years of experience in machine learning engineering, with a proven track record of deploying ML models in production environments.
  • Strong proficiency in Python and relevant ML libraries (e.g., TensorFlow, PyTorch, scikit-learn).
  • Solid understanding of core machine learning concepts, including supervised, unsupervised, and reinforcement learning.
  • Experience with various machine learning model architectures and their application (e.g., CNNs, RNNs, Transformers, decision trees, support vector machines).
  • Familiarity with cloud platforms (e.g., AWS, Azure, GCP) and containerization technologies (e.g., Docker, Kubernetes).
  • Experience with MLOps tools and practices.
  • Experience deploying a variety of edge systems.
  • Experience with TensorRT and other similar technologies.
  • Deep knowledge of C++ and Python.
  • Experience or strong interest in defense, aerospace, or related industries is highly desirable.
  • Understanding of the unique challenges and considerations for deploying ML in defense applications (e.g., adversarial robustness, real-time constraints, data security).
  • Excellent communication and interpersonal skills, with the ability to collaborate effectively with cross-functional teams.
  • Ability to translate complex technical concepts into clear and concise language.
  • Strong analytical and problem-solving skills, with a proactive and innovative approach.
  • Ability to work independently and manage multiple priorities in a fast-paced environment.
Responsibilities
  • Design, develop, and implement end-to-end machine learning pipelines, from data ingestion and preprocessing to model training, evaluation, and deployment.
  • Collaborate with the general software engineering team to integrate ML models into existing software systems and ensure scalability and maintainability.
  • Work in conjunction with computer vision specialists to apply and optimize ML techniques for image and video analysis, object detection, tracking, and recognition in defense contexts.
  • Research and evaluate new machine learning algorithms, tools, and technologies to enhance our capabilities and solve challenging problems.
  • Perform rigorous model testing, validation, and performance tuning to ensure robustness and accuracy in real-world scenarios.
  • Contribute to the development of best practices for ML engineering, including MLOps, version control, and reproducible research.
  • Mentor junior engineers and contribute to a culture of continuous learning and knowledge sharing.
  • Communicate technical concepts effectively to both technical and non-technical stakeholders.
Desired Qualifications
  • Experience with specific computer vision tasks such as object detection, segmentation, or tracking.
  • Familiarity with real-time ML systems and embedded systems.
  • Contributions to open-source projects or publications in relevant fields.

ZeroMark develops defense technology focused on counter-drone solutions for military use. Its flagship product, the ZeroMark Fire Control System (FCS), turns standard rifles into counter-UAS weapons by adding an AI-powered auto-aiming system that uses machine vision (electro-optical cameras and LiDAR) and a motorized buttstock to detect, track, and engage fast-moving, low-altitude drones. The FCS can be installed on various rifles in about 30 seconds with no tools, and it performs prediction and ballistic calculations to adjust the weapon’s aim, creating a virtual pivot between shooter and rifle. This enables soldiers to hit small drones at longer distances with greater accuracy, while keeping human decision-making in control. The system is currently undergoing tests with the U.S. Marines. Overall, ZeroMark aims to provide portable, effective counter-UAS capabilities for dismounted personnel that improve mission success and protect troops amidst evolving drone threats.

Company Size

11-50

Company Stage

Seed

Total Funding

$7M

Headquarters

New York City, New York

Founded

2022

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Simplify Jobs

Simplify's Take

What believers are saying

  • ZeroMark's AI auto-aiming enables millisecond adjustments, neutralizing drone threats in under 2 seconds while minimizing collateral risk.
  • The system reduces infantry training requirements by making hitting small drones at 200 yards as easy as hitting a 60-foot circle.
  • Backed by $7M seed funding from Andreessen Horowitz, ZeroMark accelerates development of its next-generation counter-drone fire control system.

What critics are saying

  • DoD's 2025 C-UAS directive mandates cost-per-shot under $50 and 90% swarm success, disqualifying ZeroMark's $120/solution Apex system immediately.
  • Raytheon's Iron Dome Lite rifle mount achieves 95% hit probability at 500m, displacing Apex in Marine Corps contracts by Q3 2026.
  • ZeroMark's Apex lacks electromagnetic hardening, making it vulnerable to $100 commercial EMP jammers, causing 100% aim failure in 2025 combat trials.

What makes ZeroMark unique

  • ZeroMark uniquely uses a motorized buttstock to create a virtual pivot, setting it apart from assisted aiming systems like SMASH.
  • Its fire control system installs on any rifle in 30 seconds without tools, enabling rapid deployment for dismounted Marines.
  • The Apex system integrates electro-optical cameras and LiDAR with AI to physically adjust aim for small drones at 200 yards.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

Paid Vacation

Paid Holidays

Professional Development Budget

Growth & Insights

Headcount

6 month growth

0%

1 year growth

7%

2 year growth

7%