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Freelance Computer Vision Deep Learning Engineer Jobs in Kansas

$89K - $123K/yr

Deep understanding of computer vision model architectures, particularly generative models (GANs ... Strong software engineering practices including version control (Git), CI/CD, unit testing, and ...

Machine Learning Tutor

Wichita, KS · Remote

$18 - $40/hr

Deep knowledge of supervised learning, unsupervised learning, feature engineering, model selection, cross-validation, regularization, ensemble methods, dimensionality reduction, clustering, and deep ...

Deep knowledge of supervised learning, unsupervised learning, feature engineering, model selection, cross-validation, regularization, ensemble methods, dimensionality reduction, clustering, and deep ...

$195K - $286K/yr

... engineering foundation: A Bachelor's or Master's degree in Machine Learning, Computer Vision ... You inspire and elevate those around you through deep technical expertise and mentorship. - Cross ...

... Learning engineers for full time positions with clients. Who Should Apply Recent Computer science ... Computer Vision, data visualization tools Excellent written and verbal communication skills ...

$158K - $269K/yr

Waabi is backed by and partners with world leaders in AI, automotive, logistics, and deep tech. ... computer vision, machine learning, or self-driving technology. The US yearly salary range for this ...

Junior AngularJS Developer

Overland Park, KS · On-site

$63K - $82K/yr

... Machine Learning engineers. Who Should Apply Recent Computer science/Engineering /Mathematics ... Vision, data visualization tools • Excellent written and verbal communication skills Preferred ...

... or computer information systems. Applicants with a minimum of 5-10 years of experience are ... Experience with Machine Learning, Deep Learning, and/or AI * Experience with data processing ...

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Freelance Computer Vision Deep Learning Engineer information

What engineers make $500,000?

Senior computer vision deep learning engineers with extensive experience, advanced skills in neural networks, and proficiency in frameworks like TensorFlow or PyTorch can earn $500,000 or more annually, especially in high-demand industries such as autonomous vehicles, AI research, or tech giants. Achieving this level often requires a strong educational background, specialized certifications, and a track record of impactful projects.

Is computer vision a dead field?

Computer vision remains a vibrant and evolving field with ongoing research and practical applications, especially in areas like autonomous vehicles, medical imaging, and security. Freelance computer vision deep learning engineers are in demand for developing models using tools like TensorFlow and PyTorch, and staying current with advancements is essential for success.

Is ML full of coding?

Machine learning (ML) roles, including those for a freelance computer vision deep learning engineer, typically involve significant coding, especially in languages like Python and frameworks such as TensorFlow or PyTorch. Strong programming skills are essential for developing, training, and deploying models, although understanding algorithms and data preprocessing are also important components of the job.

Is ML a high paying job?

A career as a machine learning engineer, including roles in computer vision and deep learning, is generally considered high paying due to the specialized skills and demand for expertise in algorithms, programming, and data analysis. Salaries vary based on experience, location, and industry, but these roles often offer competitive compensation compared to other tech positions.
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What job categories do people searching Freelance Computer Vision Deep Learning Engineer jobs in Kansas look for? The top searched job categories for Freelance Computer Vision Deep Learning Engineer jobs in Kansas are:
What cities in Kansas are hiring for Freelance Computer Vision Deep Learning Engineer jobs? Cities in Kansas with the most Freelance Computer Vision Deep Learning Engineer job openings:

$89K - $123K/yr

Other

Posted 22 days ago


Job description

About Pictor Labs

Pictor Labs is the leading virtual staining company revolutionizing digital pathology adoption worldwide through cutting-edge AI-powered technology. Our solutions deliver diagnostic-quality results in minutes while preserving tissue samples for comprehensive analysis.

Our breakthrough DeepStain and ReStain technologies enable unlimited virtual staining from a single tissue sample, eliminating the bottlenecks and limitations of traditional chemical staining processes. This innovation supports the critical evolution from research applications to clinical deployment, empowering laboratories to advance their digital pathology capabilities while reducing chemical waste, improving operational efficiency, and expanding diagnostic possibilities.

About the Role

We are seeking an experienced Senior ML Inference Engineer to join our team, focusing on optimizing and deploying our production virtual staining models at scale. The ideal candidate will have deep expertise in ML inference optimization, GPU programming, and building production-grade inference systems. You will work on critical challenges such as reducing inference latency for whole slide imaging (WSI) from tens of minutes to under 2 minutes, deploying models on edge devices with NVIDIA hardware, and ensuring our inference infrastructure meets FDA and SOC2 compliance requirements. This role offers the opportunity to work at the intersection of cutting-edge AI and life-saving healthcare technology, making a tangible impact on patient outcomes.

Location: Remote US
Company: Pictor Labs
Employment Type: Full-time

Responsibilities

  • Design, development, and optimization of production ML inference systems for virtual staining models (Deepstain, Restain, ClearStain) serving clinical and pharmaceutical customers
  • Architect and implement high-performance inference pipelines capable of processing gigapixel pathology images with sub-2-minute latency requirements
  • Work with ML Research and Engineering teams to optimize model architectures and deployment strategies for both cloud-based APIs and edge devices (NVIDIA DGX Sparc, Grace Blackwell superchips)
  • Evaluate, implement, and maintain state-of-the-art inference frameworks (TensorRT, Triton Inference Server, ONNX Runtime) to maximize GPU utilization and throughput
  • Profile and optimize deep neural networks on NVIDIA GPUs using tools such as NVIDIA Nsight, PyTorch Profiler, and custom instrumentation
  • Design and implement efficient model serving architectures that support both synchronous REST APIs and asynchronous batch processing workflows
  • Collaborate with Platform and Edge Device teams to containerize inference systems (Docker, Kubernetes) for deployment across cloud and on-premise environments
  • Partner with cloud providers (AWS, GCP, Azure) to optimize hosted inference solutions and leverage latest hardware accelerators
  • Ensure inference systems meet regulatory requirements (FDA 510(k), SOC2) with comprehensive monitoring, logging, and audit capabilities
  • Prototype and productionize new inference optimization techniques, including quantization, pruning, distillation, and dynamic batching strategies
  • Build robust telemetry and monitoring systems to track model performance, latency, throughput, and resource utilization in production

Qualifications

Required:

  • 7+ years of experience building and optimizing production ML inference systems at scale
  • Expert-level proficiency in Python and experience writing high-performance inference services
  • 5+ years of hands-on experience with PyTorch and at least one production inference tools (TensorRT, Triton Inference Server, ONNX Runtime, TorchServe)
  • Deep understanding of computer vision model architectures, particularly generative models (GANs, diffusion models) and vision transformers
  • Extensive experience profiling and optimizing deep neural networks on NVIDIA GPUs, including memory optimization, kernel fusion, and mixed-precision inference
  • Strong background in image processing pipelines and libraries (OpenCV, Pillow, scikit-image) for handling large-scale medical imaging data
  • Proven experience deploying ML systems on Kubernetes and major cloud providers (AWS, GCP, Azure)
  • Experience with Docker containerization and orchestration for ML workloads
  • Strong software engineering practices including version control (Git), CI/CD, unit testing, and production debugging
  • Excellent communication, collaboration, and technical documentation skills

Preferred:

  • Experience with medical imaging, digital pathology, or whole slide imaging (WSI) processing
  • Knowledge of edge device deployment and embedded systems for AI inference
  • Experience with MLOps tools (MLflow, Kubeflow, Apache Airflow) and model versioning
  • Understanding of FDA regulatory requirements for AI/ML in medical devices
  • Background in distributed inference systems and model parallelism techniques
  • Familiarity with monitoring and logging tools (Prometheus, Grafana, ELK Stack)

What We Offer

The opportunity to work on technology that directly improves patient outcomes and transforms clinical diagnostics, alongside a talented team of engineers and researchers pushing the boundaries of AI in healthcare.

PictorLabs is an equal opportunity employer and does not discriminate on the basis of race, religion, national origin, gender, sexual orientation, age, veteran status, disability, or other legally protected statuses.