Computer Vision AI & ML Engineer

Skild AI

$100K — $150K *
Enterprise Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in AI & ML engineering with a focus on computer vision
  • Strong expertise in deep learning frameworks like PyTorch, TensorFlow, or JAX
  • Proficient in Python, with some knowledge of C++
  • Experience in creating training pipelines and evaluation frameworks
  • Familiar with 3D geometry and sensor processing techniques
  • Background in producing reliable ML deployment workflows
  • Knowledge of data annotation tools and dataset management practices

Responsibilities

  • Develop and optimize deep learning models for various computer vision tasks
  • Build scalable data processing pipelines for real-world systems
  • Create labeling strategies and tools for automated data annotation
  • Implement monitoring frameworks for model reliability and performance
  • Conduct experiments to explore and prototype new algorithms
  • Collaborate with cross-functional teams to enhance perception model integration
  • Translate research into practical applications to improve system performance

Benefits

  • Flexible work hours and remote working options
  • Opportunities for professional development and continued learning
  • Access to cutting-edge technology and advanced research
  • Engagement in innovative projects with real-world impact
  • Collaborative and inclusive work environment
Full Job Description
Position Overview

We are seeking a Computer Vision AI & ML Engineer to design, build, and deploy advanced perception systems for real-world robotics and automation. You will work across the full machine learning lifecycle-model development, data strategy, evaluation, and production integration-to deliver robust, high-performance vision capabilities. This role combines applied research with hands-on engineering and offers the opportunity to influence both architecture and roadmap decisions.
Responsibilities
  • Develop and optimize deep learning models for depth estimation, object detection, segmentation, tracking, and 3D scene understanding using multi-modal sensor data.
  • Build scalable pipelines for data processing, training, evaluation, and deployment into real-world and real-time systems.
  • Design labeling strategies and tooling for automated annotation, QA workflows, dataset management, augmentation, and versioning.
  • Implement monitoring and reliability frameworks, including uncertainty estimation, failure detection, and automated performance reporting.
  • Conduct proof-of-concept experiments to evaluate new algorithms and perception techniques; translate research insights into practical prototypes.
  • Collaborate with robotics, systems, and simulation teams to integrate perception models into production pipelines and improve end-to-end performance.
Preferred Qualifications
  • Strong experience with deep learning frameworks (PyTorch, TensorFlow, or JAX).
  • Background in computer vision tasks such as detection, depth estimation, segmentation, tracking, or 3D scene understanding.
  • Proficiency in Python; familiarity with C++ is a plus.
  • Experience building training pipelines, evaluation frameworks, and ML deployment workflows.
  • Knowledge of 3D geometry, sensor processing, or multi-sensor fusion (RGB-D, LiDAR, stereo).
  • Experience with data annotation tools, dataset management, and augmentation techniques.
  • Familiarity with robotics, simulation environments (Isaac Sim, Gazebo, Blender), or real-time systems.
  • Understanding of uncertainty modeling, reliability engineering, or ML monitoring/MLOps practices.

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