
Matterport - Senior ML Ops Engineer
Matterport
The Role
Overview
Optimize, accelerate, and deploy ML models for Matterport's spatial computing platform.
Key Responsibilities
- model optimization
- mlops
- ci/cd pipelines
- performance profiling
- hardware acceleration
- research trends
Tasks
-Design and conduct experiments to measure the impact of optimization techniques on model performance and accuracy. -Contribute to the continuous improvement of MLOps practices and infrastructure for model deployment and monitoring. -Implement and apply model optimization techniques such as quantization, pruning, distillation, and neural architecture search to improve inference speed and reduce resource consumption. -Stay up-to-date with the latest research and industry trends in ML model optimization, hardware acceleration, and efficient AI. -Collaborate with ML R&D Engineers to understand model architectures, training procedures, and deployment requirements. -Ensure the scalability and reliability of optimized models in production environments. -Analyze and profile machine learning models to identify performance bottlenecks and areas for optimization. -Develop and integrate specialized libraries and tools for efficient model execution on various hardware platforms (e.g., GPUs, CPUs, edge devices). -Automate model optimization workflows and build robust continuous integration/continuous deployment (CI/CD) pipelines for optimized models.
Requirements
- cloud
- edge
- python
- tensorflow
- docker
- mlops
What You Bring
-Experience with cloud platforms (e.g., AWS, Azure, GCP) and deploying ML models in cloud environments. -Experience with hardware-aware model optimization and deployment to edge devices. -Experience working in a fast-paced R&D environment. -Familiarity with version control systems (e.g., Git) and agile development methodologies. -5+ years of industry experience in ML Model Optimization, ML Engineering, or MLOps, particularly with large-scale 2D/3D computer vision models. -Proficiency in Python and strong programming skills. -Excellent problem-solving skills and attention to detail, particularly in model performance and accuracy. -Excellent communication skills, both written and verbal, with the ability to articulate complex technical concepts to diverse audiences. -3+ years of experience in machine learning engineering, with a focus on model optimization and deployment. -Experience with workflow orchestration tools (e.g. Temporal, Airflow, Kubeflow). -Experience with machine learning frameworks (e.g., TensorFlow, PyTorch) and optimization libraries. -Familiarity with containerization technologies (e.g., Docker, Kubernetes). -Bachelor's degree in Computer Science, Data Science, Engineering, or a related quantitative field, or equivalent practical experience. -Master's degree in Computer Science, Data Science, or a related quantitative field. -Solid understanding of machine learning algorithms, model architectures, and deep learning concepts. -Demonstrated ability to build and maintain robust, scalable, and automated ML model deployment pipelines. -Knowledge of model compression techniques and their practical application. -Strong verbal and written communication skills.
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Benefits
-Paid time off -Employee stock purchase plan -Comprehensive healthcare coverage: Medical / Vision / Dental / Prescription Drug -Life, legal, and supplementary insurance -Complimentary in office gourmet coffee, tea, hot chocolate, fresh fruit, and other healthy snacks -Tuition reimbursement -Access to CoStar Group’s Culture Employee Resource Groups -Virtual and in person mental health counseling services for individuals and family -Commuter and parking benefits -401(K) retirement plan with matching contributions
The Company
About Matterport
-It pioneered capture of indoor spaces into photorealistic 3D digital twins -Its workflow blends cameras (Pro2, Pro3 or mobile) with AI‑powered cloud processing (Cortex) to stitch and host models -Serving industries like engineering, construction, real estate, hospitality, facilities, and insurance, with broad global reach -Its financial model blends hardware sales, subscription software, services, and licensing, with recurring‑revenue acceleration -Known for unusual partnerships—from metaverse datasets with Facebook to integrations with AWS TwinMaker and apps enabling remote walkthrough meetings
Sector Specialisms
AEC (Architecture, Engineering, Construction)
Manufacturing
Insurance
Hospitality
Government
Property Marketing
Facilities Management
Design & Construction
Tourism
Showrooms
Architectural
Interior Design
Real Estate
Security Planning
Engineering
Event Planning
Insurance Asset Management
Facility Management
