Computer Vision Engineer in London
Computer Vision Engineer

Computer Vision Engineer in London

London Full-Time 90000 - 140000 £ / year (est.) Home office possible
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At a Glance

  • Tasks: Build and deploy real-time detection and tracking systems for UAVs in challenging environments.
  • Company: Kessari, a pioneering tech company focused on autonomy solutions.
  • Benefits: Competitive salary, equity options, and performance bonuses.
  • Why this job: Join a team making a real-world impact with cutting-edge technology in UAV autonomy.
  • Qualifications: Experience in object detection, model optimisation, and data pipeline management.
  • Other info: Fast-paced environment with opportunities for growth and innovation.

The predicted salary is between 90000 - 140000 £ per year.

We build retrofit autonomy modules for existing UAV fleets operating in GPS-denied environments. This is real-world deployment, not research or simulation. Constrained hardware, degraded comms, systems that have to work first time. Kessari is moving from TRL 6 to TRL 8 with active partners. We need someone to own perception through to targeting, end-to-end.

What you’ll do:

  • Build and deploy real-time detection and tracking pipelines on edge hardware
  • Take models from training through optimisation into field deployment
  • Work on low-latency systems running on constrained GPUs (Jetson class)
  • Handle messy real-world data (aerial, oblique, thermal, small objects)
  • Ship systems that run at 30+ FPS in production
  • Work in GPS-denied conditions where localisation and perception must hold up under uncertainty

You’re a fit if you can:

  • Train and deploy object detection models (YOLO, RT-DETR or similar)
  • Optimise models for real-time edge inference (TensorRT, ONNX or similar)
  • Implement multi-object tracking (ByteTrack, BoT-SORT or similar)
  • Own the data pipeline (collection, annotation, validation)
  • Work across Python and some C++, Linux, Docker

Strong bonus:

  • Experience in GPS-denied navigation or perception systems
  • Drone or aerial imagery experience
  • Thermal or infrared perception
  • Visual SLAM or odometry integration
  • CUDA or GPU optimisation
  • Synthetic data or simulation

What matters:

This is not a research role. You need to ship fast, handle ambiguity, and make systems work in the field.

Comp: €90k – €140k+ depending on level. Equity and performance upside tied to deployments.

DM directly to apply.

Computer Vision Engineer in London employer: Kessari

At Kessari, we pride ourselves on being an innovative leader in the field of UAV autonomy, offering a dynamic work environment that fosters creativity and real-world problem-solving. Our remote culture empowers Computer Vision Engineers to take ownership of their projects while collaborating with a passionate team dedicated to pushing the boundaries of technology in challenging conditions. With competitive compensation, equity opportunities, and a focus on employee growth, Kessari is an exceptional employer for those looking to make a meaningful impact in the rapidly evolving world of autonomous systems.
K

Contact Detail:

Kessari Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Computer Vision Engineer in London

✨Tip Number 1

Network like a pro! Reach out to folks in the industry, especially those working with UAVs or computer vision. Attend meetups or webinars, and don’t be shy about sliding into DMs on LinkedIn. You never know who might have the inside scoop on job openings!

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, especially those involving real-time detection and tracking. If you’ve worked with models like YOLO or RT-DETR, make sure to highlight that. A strong portfolio can really set you apart from the crowd.

✨Tip Number 3

Prepare for technical interviews by brushing up on your knowledge of low-latency systems and edge hardware. Be ready to discuss how you’ve optimised models for real-time inference. Practising common interview questions can help you feel more confident when it’s showtime!

✨Tip Number 4

Apply through our website! We love seeing candidates who are genuinely interested in joining us at StudySmarter. Tailor your application to highlight your experience with GPS-denied navigation and perception systems, and let us know why you’re excited about the role!

We think you need these skills to ace Computer Vision Engineer in London

Real-time Detection and Tracking
Object Detection Models (YOLO, RT-DETR)
Model Optimisation for Edge Inference (TensorRT, ONNX)
Multi-object Tracking (ByteTrack, BoT-SORT)
Data Pipeline Management (Collection, Annotation, Validation)
Python Programming
C++ Programming
Linux Operating System
Docker
GPS-denied Navigation
Drone or Aerial Imagery Experience
Thermal or Infrared Perception
Visual SLAM or Odometry Integration
CUDA or GPU Optimisation
Synthetic Data or Simulation

Some tips for your application 🫡

Tailor Your CV: Make sure your CV highlights relevant experience in computer vision and edge hardware. We want to see how your skills align with the job description, so don’t be shy about showcasing your projects and achievements!

Craft a Compelling Cover Letter: Your cover letter is your chance to shine! Use it to explain why you’re passionate about working in real-world applications of computer vision. Let us know how your background makes you the perfect fit for our team.

Showcase Your Technical Skills: Be specific about your technical expertise, especially with tools like YOLO, TensorRT, or Docker. We love seeing concrete examples of how you've used these technologies in past projects, so don’t hold back!

Apply Through Our Website: We encourage you to apply directly through our website. It’s the best way for us to receive your application and ensures you’re considered for the role. Plus, it shows us you’re keen on joining our team!

How to prepare for a job interview at Kessari

✨Know Your Tech Inside Out

Make sure you’re well-versed in the technologies mentioned in the job description, like YOLO and TensorRT. Be ready to discuss your experience with real-time detection and tracking pipelines, as well as any challenges you've faced while deploying models on edge hardware.

✨Showcase Your Problem-Solving Skills

Prepare examples of how you've tackled messy real-world data or worked under uncertainty. This role requires quick thinking and adaptability, so share specific instances where you successfully navigated ambiguity in your projects.

✨Demonstrate Your Hands-On Experience

Since this is a practical role, be ready to talk about your previous work with drones or aerial imagery. Highlight any projects where you’ve implemented multi-object tracking or worked with GPS-denied navigation systems to show you can hit the ground running.

✨Ask Insightful Questions

Prepare thoughtful questions about the company’s current projects and future goals. This shows your genuine interest in the role and helps you understand how you can contribute to their mission of building robust autonomy modules.

Computer Vision Engineer in London
Kessari
Location: London

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