📍Al Khobar, Saudi Arabia
→ Up to SAR 50k per month
We’re partnering with a technology company using AI to improve safety across large-scale industrial and construction environments. Their platform analyses live site video to identify potential hazards and provide teams with timely, actionable safety insights.
They’re looking for a
Principal AI Engineer
to take technical ownership of the AI and perception stack. You’ll stay hands-on while setting architecture, solving the hardest computer vision and applied AI problems, and influencing technical direction across the wider engineering team.
This is a genuinely deep technical role where
video is at the centre of the product
, spanning computer vision, multimodal models, agentic AI, edge deployment and real-time systems.
What You’ll Do:
-
Own the technical direction of the computer vision and perception stack.
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Design and build production systems for
object detection, segmentation, tracking and video understanding
.
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Develop multimodal and vision-language systems that can reason over live and recorded video.
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Build AI agents capable of reasoning over visual data, using tools and APIs and operating within controlled workflows.
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Own the full model lifecycle from problem definition and data strategy through to experimentation, deployment, monitoring and continuous improvement.
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Optimise models across edge and cloud environments, balancing accuracy, latency, reliability and cost.
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Establish responsible AI and safety controls, including confidence thresholds, human review, explainability and auditability.
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Lead architecture reviews and document key technical decisions.
Who We’re Looking For:
-
Proven experience taking
multiple production ML or computer vision systems from concept through to live operation
.
-
Deep hands-on experience working with
video
, including video streaming, analytics or computer vision over video.
-
Strong experience with
PyTorch or TensorFlow
across detection, segmentation, tracking and video understanding.
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Experience with both purpose-built computer vision models and transformer-based approaches.
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Production experience with
vision-language or multimodal models
, including model adaptation, prompting, evaluation and integration.
-
Experience building
agentic AI or tool-using systems
, with appropriate guardrails and human-in-the-loop controls.
-
Strong experience with dataset curation, fine-tuning, active learning and experiment management.
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Proven experience deploying AI workloads across
edge and cloud infrastructure
, with a focus on real-world latency, throughput and memory constraints.
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Strong MLOps and evaluation experience, including regression testing, experiment tracking, model versioning, monitoring and drift detection.
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Exceptional written and spoken English.
Nice to have:
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RAG, vector search or multimodal retrieval experience.
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Real-time video or streaming camera systems.
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Edge AI technologies such as TensorRT, ONNX Runtime, Jetson or other GPU/NPU platforms.
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Self-hosted LLM/VLM serving using tools such as vLLM or similar.
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Experience in safety-critical, industrial or construction environments.
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Knowledge of EHS or workplace safety frameworks.
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Experience with privacy-focused video systems, including anonymisation, access controls and audit trails.
Interested?
Apply today!