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3D Rendering Medical Imaging Jobs in Kentucky (NOW HIRING)

$140 - $180/hr

A unified volume-rendering path that falls back to stack rendering, multiplanar reformats generated ... The annotation system. 3D mask storage, AI-assisted click-to-segment across all three planes, the ...

Engineer

Georgetown, KY · On-site

$40 - $42/hr

Conduct 3D rendering and evaluation of building and equipment models for project studies using ... Medical, Dental, and Vision Insurance * 401(k) Retirement Plan * Health Savings Account (HSA)

... 3D medical image post-processing lab in the U.S., provides 24/7/365 access to more than 200 expert radiologic technologists and to state-of-the-art imaging software. Founded in 2005, 3DR Labs ...

$95 - $140/hr

... medical imaging and sensing devices, taking concepts from early prototypes through to commercial ... Proficiency with CAD software (e.g., SolidWorks or equivalent) for 3D modeling, tolerancing, and ...

$140 - $200/hr

... fusing 3D computer vision, neural rendering and large multimodal models inside highly regulated ... Comprehensive health coverage : medical, dental, and vision insurance * 401(k) plan * Paid parental ...

New

$152 - $288/hr

JR2015681Are you passionate about 3D graphics, GPUs, and pushing the boundaries of rendering ... medical diagnosis and scientific research. Today, we stand at the beginning of the next era, the AI ...

$70 - $100/hr

Radiology, Medical Imaging, Cancer Care, Radiation Therapy, RT(T),Radiation Therapy & Dosimetry ... The radiation oncology department performs simulation and 3D simulation, dosimeter, and radiation ...

$120 - $180/hr

Our medical imaging and guidance system employs advanced real-time 3D graphic capabilities and proprietary software that is sold to surgeons and hospitals all over the world. Summary The Senior DevOp ...

Cardiology Physician

Owensboro, KY · On-site

$350K - $395K/yr

General Cardiology Interventional Cardiology (including structural intervention) Advanced Cardiac Imaging (MRI, CT) Echocardiography (3D, strain imaging) Nuclear Cardiology Electrophysiology ...

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3D Rendering Medical Imaging information

What is 3D rendering in medical imaging?

3D rendering in medical imaging is the process of creating three-dimensional visual representations of structures inside the body, using data collected from imaging techniques such as CT scans or MRIs. This technique allows healthcare professionals to view anatomical features from different angles and to better understand complex structures, which can improve diagnosis, treatment planning, and patient communication. 3D rendering can also be used in surgical planning, education, and research, making it a valuable tool in modern medicine.

What are some common challenges faced when working with 3D rendering in medical imaging, and how can they be addressed?

Professionals in 3D rendering for medical imaging often encounter challenges such as processing large, complex datasets and ensuring accurate representation of anatomical structures. These challenges can be addressed by staying updated with the latest software advancements, collaborating closely with radiologists for clinical validation, and maintaining strong attention to detail. Additionally, effective communication with multidisciplinary teams is crucial to ensure that rendered images meet diagnostic and educational needs. Regular training and participation in workshops can also help in mastering new tools and techniques.

What are the key skills and qualifications needed to thrive as a 3d rendering medical imaging specialist, and why are they important?

To thrive as a 3D Rendering Medical Imaging Specialist, you need expertise in medical imaging modalities (such as CT, MRI), anatomy, and image post-processing, typically supported by a degree in radiology, biomedical engineering, or a related field. Familiarity with advanced visualization software (like OsiriX, 3D Slicer, or Mimics), DICOM standards, and possibly certifications in radiologic technology are crucial. Strong attention to detail, problem-solving abilities, and effective communication with healthcare teams set top performers apart. These skills ensure accurate, high-quality visualizations that aid clinical decision-making and improve patient outcomes.

What is the difference between 3D Rendering Medical Imaging vs Medical Illustrator?

Aspect3D Rendering Medical ImagingMedical Illustrator
CredentialsOften requires degrees in radiology, medical imaging, or related fields; certifications in imaging softwareTypically holds degrees in medical illustration, art, or related fields; certifications in graphic design or illustration
Work EnvironmentHospitals, imaging centers, medical device companiesMedical publishing, educational institutions, healthcare marketing
Industry UsageUsed for diagnostic visualization, surgical planning, and medical device developmentUsed for educational materials, patient information, and medical publications

While both roles involve visual representation of medical concepts, 3D Rendering Medical Imaging focuses on creating detailed, accurate 3D visualizations from medical scans for diagnostic and planning purposes. Medical Illustrators produce educational and promotional visuals, often combining artistic skills with medical knowledge. The key difference lies in their primary application and technical focus.

How to become a 3D rendering medical imaging specialist?

To become a 3D rendering medical imaging specialist, individuals typically need a bachelor's degree in medical imaging, radiologic technology, computer graphics, or a related field. Developing skills in 3D modeling software, medical imaging technologies, and understanding anatomy are essential, along with gaining experience through internships or certifications such as those in medical imaging or 3D visualization. Continuous learning about new imaging tools and software updates is important for career advancement.

What are popular job titles related to 3D Rendering Medical Imaging jobs in Kentucky?

For 3D Rendering Medical Imaging jobs in Kentucky, the most frequently searched job titles are:

What job categories do people searching 3D Rendering Medical Imaging jobs in Kentucky look for?

The top searched job categories for 3D Rendering Medical Imaging jobs in Kentucky are:

What cities in Kentucky are hiring for 3D Rendering Medical Imaging jobs?

Cities in Kentucky with the most 3D Rendering Medical Imaging job openings:

Infographic showing various 3D Rendering Medical Imaging job openings in Kentucky as of August 2026, with employment types broken down into 75% Full Time, and 25% Nights. Highlights an 100% In-person job distribution.

Clinical Imaging Platform Engineer

On-site

$140 - $180/hr

Other

Posted 11 days ago


Job description

We build clinical AI that reads alongside radiologists. Our abdomen-pelvis CT triage device is FDA-cleared, and it's the first commercial system to simultaneously triage seven urgent conditions on abdomen-pelvis CT in the U.S. We’re backed by Khosla Ventures.

This role owns two of the things that decide how good our models can get: the quality of the labels going in, and whether a radiologist can see and trust what the model gives back.

Radiologist time is the most expensive input we have. When a reader has to click four times to do something that should take one, we lose annotation throughput, and less throughput means weaker models, which eventually means a finding a patient's scan should have caught. So the interface a radiologist works in genuinely drives model quality, and this is a product engineering job as much as an infrastructure one.

The harder half is knowing whether the labels are any good in the first place. Our annotation pipeline is built to measure itself: cases are claimed without race conditions, annotators move through defined phases, some batches are seeded with known ground truth, others are handed to more than one reader on purpose, and we score agreement with per-lesion Dice even when two readers worked from reconstructions that don't share a geometry. Getting that measurement right is most of the work.

Today one engineer holds this whole surface while also carrying several others, and that's the gap we're hiring to close.

What you'd own

The viewer, built on Cornerstone3D and VTK.js. A unified volume-rendering path that falls back to stack rendering, multiplanar reformats generated on demand in any plane and clearly labeled as reformats, and progressive loading that builds a low-resolution volume from the first 10% or so of each HTJ2K codestream so the reader sees an image right away. It also includes the correctness work that only shows up when it's wrong: radiological left/right, rulers under gantry tilt, MONOCHROME1 inversion, and signed-pixel codec mismatches.

The annotation system. 3D mask storage, AI-assisted click-to-segment across all three planes, the classical tools readers still reach for (region growing, FWHM thresholding, multi-seed refinement), and the evaluation pipeline around them: case-pool ledgers, per-annotator phase state machines, ground-truth and peer-overlap batches, agreement scorecards, and cross-series resampling through NIfTI affines. One thing we're firm on: when a case can't be scored, the system says so, rather than recording it as a zero.

Annotation schemas. Per-lesion-category schemas with gating by view, phase, and slice, and conditionally required fields. These calls are partly clinical, and you'll make them together with our radiologists.

Model output that a radiologist can actually read. A versioned sparse-RLE mask contract keyed by SOP Instance UID, and the geometry that maps a model's 512-square grid through image position, direction cosines, and pixel spacing into world-space contours that land on the right anatomy.

The platform underneath. FastAPI on AWS, with per-study authorization enforced on every read, cohort isolation between customers, and access-trail auditing that meets HIPAA §164.312(b) for study-data reads.

A lot of the hard bugs here come down to DICOM geometry: coordinate systems, orientation, affines. You don't need to arrive knowing all of it, but you should find it interesting rather than tedious, because you'll spend real time in it.

Who we're looking for

Someone who has built software people used for hours a day and made it better by watching them use it. When you're asked whether the annotation quality is good, your instinct is to reach for a metric. You're comfortable enough with coordinate systems to track down why a mask is 3mm off instead of nudging it into place, and you fail safely by default when patient data is involved. You can disagree with a radiologist about software, and you defer to them completely on medicine.

Helpful, but not required

React and TypeScript with real performance work behind you; backend API and async experience; medical imaging (DICOM, Cornerstone3D, OHIF, PACS); annotation tooling from either side; AWS and Terraform; segmentation or computer vision; inter-rater agreement and measurement design; regulated software experience (ISO 13485, IEC 62304, HIPAA); and codec or streaming work such as HTJ2K.

Stack

React, TypeScript, Vite, Cornerstone3D, VTK.js, Jotai, TanStack Query, Tailwind, Playwright; Python, FastAPI, pytest; AWS (DynamoDB, S3 byte-range reads, Cognito, SQS, ECS, Lambda) with Terraform; DICOM, DICOMweb, HTJ2K, NIfTI, RLE.

Compensation (US, Boston hybrid)

$140,000 to $180,000 base, plus an approximately 10% discretionary bonus. Equity may be offered to top candidates.

Compensation (international, remote)

for candidates outside the US, the base is cash-weighted and set by the local market for the country where the work is done, and we'll share the specific range for your location early in the process. You would work from your own country, so no visa is needed and there are no immigration strings. International offers are cash-only, with no equity.

Working from outside the US

several of our core repositories are already owned by engineers outside the US, and you'd have the same repositories, data, and review authority as anyone on the team. Our reviews are written and asynchronous because the time-zone spread calls for it, which happens to suit regulated code well. Depending on your country, you'd join as a contractor or as an employee through an employer of record. We don't run a two-tier engineering team.

The team

a2z was co-founded by Pranav Rajpurkar, an Associate Professor at Harvard Medical School with more than 150 publications. Our engineers trained at MIT and Stanford, and our fellowship-trained radiologists read alongside the model every day.

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