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1 ימים
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Location: Herzliya
Job Type: Full Time
We are a leading software engineering and consulting company, delivering innovative technology solutions for startups, enterprises, and global organizations. Our teams work on cutting-edge projects across AI, computer vision, 3D technologies, and intelligent systems, solving complex engineering challenges with real-world impact.
We are looking for a Computer Vision Engineer to join our AI & Computer Vision team. In this role, you will research, design, and develop advanced computer vision algorithms for images, video, and 3D data, contributing to innovative AI-driven solutions and high-precision systems. Depending on your background and expertise, you will focus on one or more of the following domains:
* Classical Computer Vision & 3D Processing.
* Segmentation & AI-based Vision Models.
* Synthetic data Generation & Quality Evaluation.
* Multi-Sensor Vision, Registration, SLAM, and Photogrammetry You will collaborate closely with software engineers, AI researchers, and product teams to develop scalable, high-performance computer vision solutions for real-world applications.
Responsibilities:
* Research, design, and develop advanced computer vision algorithms for images, video, and 3D data.
* Develop and optimize AI-based and classical computer vision solutions.
* Design algorithms for segmentation, registration, SLAM, sensor calibration, photogrammetry, and 3D processing.
* Develop and improve synthetic data generation, validation, and quality evaluation methods for AI model training.
* Build metrics and automated tools to assess data quality, model performance, and algorithm accuracy.
* Collaborate with multidisciplinary teams to integrate computer vision solutions into production systems.
* Continuously evaluate and improve algorithm performance, robustness, and scalability.
Requirements:
Bachelor's degree or higher in Computer Science, Electrical Engineering, Physics, Mathematics, or a related field. 3+ years of hands-on experience developing Computer Vision algorithms. Experience in one or more of the following areas:
* Classical Computer Vision
* Segmentation
* Synthetic data
* Registration
* SLAM
* Photogrammetry
* 3D Processing
* Multi-Sensor Vision Strong analytical and problem-solving skills.
Ability to work independently and collaboratively in a multidisciplinary team.
This position is open to all candidates.
 
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Location: Herzliya
Job Type: Full Time
We are seeking a talented Computer Vision / ML researcher to join our team. The job will focus on developing innovative deep learning solutions for efficient video restoration in new imaging systems. You will be part of an interdisciplinary team developing technologies that will shape future our products.

Deep learning development:
Design, implement, and optimize deep learning models for various tasks in the field of video restoration. Implement and validate models using various datasets.
Prepare, filter, process, and analyze large-scale datasets to train and evaluate models.
Analyze the results of your algorithm and compare with other leading methods.
Optimize models for real-time performance and resource efficiency.
Research:
Investigate efficient architecture patterns (lightweight backbones, attention mechanisms, recurrent designs) suitable for on-device inference.
Explore how algorithm approaches can mitigate artifacts of new imaging systems.
Stay updated with recent advancements in the field.
Collaboration:
Work closely with ML researchers, SW, HW and camera architecture engineers to translate research ideas into robust models and practical systems.
Requirements:
Minimum Qualifications
Strong foundation in image processing, computer vision, machine learning, and deep learning.
Proficiency in Python and deep learning frameworks (e.g. PyTorch).
Hands on demonstrated experience with designing real time deep learning solutions, using large scale datasets.
Proficiency in Python and deep learning frameworks (e.g. PyTorch).
Experience with model evaluation, debugging, experimental analysis, and failure analysis.
PhD or Master's degree in Computer Science, Electrical Engineering, in related research fields.
Proficient in both written and verbal communication.
Ability to work both autonomously and collaboratively.
PhD or Master's degree in Computer Science, Electrical Engineering in related research fields.
5+ or more years of relevant experience.

Preferred Qualifications
Experience with video restoration, super-resolution, denoising, deblurring, artifact removal, inverse problems or computational imaging.
Experience with advanced implementation architectures on GPU, Dedicated HW or Neural engines.
Experience with generative priors (diffusion, flow matching) is an advantage.
Background in signal processing, physics, computational imaging or inverse problems.
Publications in top-tier computer vision conferences (CVPR, ICCV, ECCV, NeurIPS).
This position is open to all candidates.
 
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Location: Herzliya
Job Type: Full Time
We are seeking a talented Computer Vision / ML Researcher to develop diffusion-based generative models for video restoration in new imaging systems. The role will focus on large, high-quality models that restore degraded video while preserving fidelity, detail, motion, and temporal consistency. You will be part of an interdisciplinary team developing technologies that will shape our future products.
Deep hands-on experience with diffusion models is required. The ideal candidate has worked on diffusion-based image or video models and has a strong research track record, ideally including publications on diffusion, generative vision, video models, restoration, or inverse problems.

Deep learning development: Design, train, evaluate, and optimize deep learning models for video restoration tasks such as denoising, deblurring, artifact removal, super-resolution, detail recovery, and temporal stabilization. Work with large-scale video datasets, synthetic and real degradations, and rigorous evaluation pipelines.
Research: Develop and adapt diffusion models for video restoration, including video diffusion, DiT-style architectures, latent diffusion, conditional diffusion, diffusion for inverse problems, and efficient sampling. Analyze results, compare against leading methods, and investigate approaches for fidelity preservation, hallucination control, temporal consistency, distillation, and production-quality inference.
Collaboration: Work closely with ML researchers, engineers, and cross-functional teams to translate research ideas into robust models and practical systems.
Requirements:
Minimum Qualifications:
Strong foundation in computer vision, machine learning, deep learning, and video processing.
Deep hands-on experience with diffusion models.
Experience training diffusion-based image or video models.
Proficiency in Python and deep learning frameworks such as PyTorch.
Hands-on experience training deep learning models using large-scale datasets.
Experience with model evaluation, debugging, experimental analysis, and failure analysis.
Masters or PhD in Computer Science, Electrical Engineering, Machine Learning, Computer Vision, or a related field, or equivalent experience.
Strong written and verbal communication skills.
Ability to work both independently and collaboratively.
5+ years of relevant experience, or a PhD with relevant research contributions.

Preferred Qualifications:
Publications on diffusion models, generative vision, video models, restoration, or inverse problems at top-tier venues such as CVPR, ICCV, ECCV, NeurIPS.
Experience with video diffusion, DiT architectures, latent diffusion, conditional diffusion, rectified flow, consistency models, or diffusion distillation.
Experience with video restoration, super-resolution, denoising, deblurring, artifact removal, inverse problems, or computational imaging.
Strong understanding of temporal consistency, motion, occlusion, flicker, hallucination control, and fidelity-preserving generation.
Experience with efficient inference, model optimization, distillation, or deployment on constrained hardware.
Background in signal processing, physics, computational imaging, or inverse problems.
This position is open to all candidates.
 
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