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Healthcare Data Scientist Jobs in Reno, NV (NOW HIRING)

Data Science Tutor

Reno, NV · Remote

$18 - $40/hr

Emphasizes translating business questions into analytical frameworks and connects data science to product management, marketing analytics, and healthcare informatics. * Curriculum Awareness ...

The primary role of the Healthcare Coordinator (HC) is to partner with supported Dentists to help ... Process Focused Operator (data driven decision-maker; detailed; organized and structured ...

The primary role of the Healthcare Coordinator (HC) is to partner with supported Dentists to help ... Process Focused Operator (data driven decision-maker; detailed; organized and structured ...

Healthcare Coordinator

Carson City, NV · On-site

$18 - $25.50/hr

The Healthcare Coordinator should support each patient in a consultative and educational manner ... Process Focused Operator (data driven decision-maker; detailed; organized and structured ...

The primary role of the Healthcare Coordinator (HC) is to partner with supported Dentists to help ... Process Focused Operator (data driven decision-maker; detailed; organized and structured ...

Healthcare Coordinator

Sparks, NV · On-site

$19 - $26.75/hr

The Healthcare Coordinator should support each patient in a consultative and educational manner ... Process Focused Operator (data driven decision-maker; detailed; organized and structured ...

Healthcare Coordinator

Reno, NV · On-site

$19 - $26.75/hr

The Healthcare Coordinator should support each patient in a consultative and educational manner ... Process Focused Operator (data driven decision-maker; detailed; organized and structured ...

... education, and healthcare practice areas. The facilities we bring to life are places where ... Develop and maintain data solutions that support reporting, business intelligence, data science ...

New

... education, and healthcare practice areas. The facilities we bring to life are places where ... Develop and maintain data solutions that support reporting, business intelligence, data science ...

New

Experience with health insurance, admissions, and healthcare administration * Ability to ... Advanced Microsoft Excel and data entry skills preferred * Basic knowledge of medical terminology ...

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Showing results 1-20

Healthcare Data Scientist information

See Reno, NV salary details

$45.9K

$164.5K

$242.8K

How much do healthcare data scientist jobs pay per year?

As of Aug 23, 2026, the average yearly pay for healthcare data scientist in Reno, NV is $164,534.00, according to ZipRecruiter salary data. Most workers in this role earn between $133,100.00 and $169,500.00 per year, depending on experience, location, and employer.

What is a healthcare data scientist?

A Healthcare Data Scientist is a professional who analyzes and interprets complex health-related data to improve patient outcomes, optimize healthcare operations, and support medical research. They use statistical methods, machine learning, and data visualization tools to extract insights from electronic health records, medical imaging, clinical trials, and other healthcare data sources. Their work helps hospitals, clinics, and research organizations make data-driven decisions to enhance care quality, reduce costs, and advance medical knowledge.

What does a healthcare data scientist do?

As a healthcare data scientist, your duties are to develop tools for collecting or extracting data maintained by hospitals, healthcare, providers, or federal and state agencies. You collect and analyze information, such as medical records, insurance claims, or billing information and then identify patterns or trends in the data and recommend ways to use that information to improve industry efficiency and performance. Healthcare data scientists develop forecasting and modeling programs designed to form analyses of medical records or other forms of healthcare information. Sometimes you use the models themselves while in other instances you develop these models so that healthcare workers can use them in their daily practices.

What are the key skills and qualifications needed to thrive as a healthcare data scientist, and why are they important?

To thrive as a Healthcare Data Scientist, you need expertise in statistics, data analysis, and a strong background in computer science or a related field, often supported by an advanced degree. Familiarity with programming languages like Python or R, experience with machine learning frameworks, and knowledge of healthcare data standards (such as HL7 or FHIR) are typically required. Strong problem-solving abilities, communication skills, and the ability to collaborate with cross-functional teams set top professionals apart. These skills enable effective analysis of complex healthcare data, leading to better patient outcomes and more efficient healthcare delivery.

What are some common challenges faced by healthcare data scientists when working with medical data?

Healthcare data scientists often encounter challenges such as dealing with incomplete or inconsistent patient records, ensuring data privacy and compliance with regulations like HIPAA, and integrating data from multiple sources such as electronic health records, imaging, and lab results. Additionally, translating complex data analyses into actionable insights for clinicians requires strong communication skills and domain knowledge. Collaborating closely with healthcare professionals and IT teams is essential to overcome these obstacles and deliver impactful results.

What is the difference between Healthcare Data Scientist vs Healthcare Data Analyst?

AspectHealthcare Data ScientistHealthcare Data Analyst
Required CredentialsDegree in Data Science, Statistics, or related field; often advanced certificationsBachelor's or Master's in Health Informatics, Data Analysis, or related field
Work EnvironmentResearch settings, hospitals, healthcare tech companiesHospitals, clinics, insurance companies, healthcare providers
Employer & Industry UsageDevelops predictive models, advanced analytics, machine learningInterprets data, generates reports, supports decision-making

Healthcare Data Scientists focus on building predictive models and applying advanced analytics, often requiring specialized skills and certifications. Healthcare Data Analysts primarily interpret existing data, generate reports, and support operational decisions. Both roles are vital in healthcare but differ in complexity and scope.

What job categories do people searching Healthcare Data Scientist jobs in Reno, NV look for?

The top searched job categories for Healthcare Data Scientist jobs in Reno, NV are:

Infographic showing various Healthcare Data Scientist job openings in Reno, NV as of August 2026, with employment types broken down into 1% As Needed, 83% Full Time, 13% Part Time, and 3% Contract. Highlights an 87% Physical, 3% Hybrid, and 10% Remote job distribution, with an average salary of $164,534 per year, or $79.1 per hour.

Staff Data Scientist - Digital Intelligence

Socure

Carson City, NV • On-site

$180 - $240/hr

Other

Re-posted 7 days ago


Job description

Why Socure?

Socure is building the identity trust infrastructure for the digital economy — verifying 100% of good identities in real time and stopping fraud before it starts. The mission is big, the problems are complex, and the impact is felt by businesses, governments, and millions of people every day.

We hire people who want that level of responsibility. People who move fast, think critically, act like owners, and care deeply about solving customer problems with precision. If you want predictability or narrow scope, this won’t be your place. If you want to help build the future of identity with a team that holds a high bar for itself — keep reading.

Job Summary:

Socure is the leading provider of digital identity verification and fraud prevention solutions, using AI and machine learning to power accurate identity trust decisions. Our mission is to eliminate identity fraud and ensure online trust across industries.

We are seeking a Staff Data Scientist to join our Digital Intelligence team. In this role, you will provide technical leadership for turning noisy, high-scale device, network, browser, mobile, API, and behavioral telemetry into production‑grade fraud and identity risk signals.

This is a hands‑on technical leadership role. You will lead ambiguous signal‑development efforts, define rigorous evaluation methods, influence what telemetry we collect, and help set the technical direction for how Digital Intelligence detects risky behavior, recognizes trustworthy devices and sessions, and adapts to adversarial change.

Job Responsibilities
  • Lead high-impact machine learning and feature‑development initiatives across device, network, browser, mobile, session, and behavioral intelligence.
  • Own ambiguous fraud and identity risk problems where data quality, label reliability, adversarial behavior, customer impact, and product tradeoffs must be evaluated together.
  • Develop production risk signals and models that balance fraud detection, false-positive risk, coverage, latency, explainability, robustness, and operational maintainability.
  • Build and guide scalable feature-engineering approaches for high-cardinality, sparse, noisy, and platform-dependent telemetry.
  • Investigate complex signal patterns such as spoofing, emulator behavior, automation, proxy/VPN usage, low‑entropy fingerprints, telemetry gaps, device fragmentation, and over‑linkage risk.
  • Define evaluation methods for Digital Intelligence signals, including holdout design, leakage checks, drift monitoring, adversarial robustness, customer impact analysis, and long‑term signal stability.
  • Influence telemetry collection, data contracts, feature logging, model monitoring, and production readiness in partnership with engineering, product, risk, and platform teams.
  • Translate open‑ended product, customer, and fraud‑risk questions into clear data science approaches, measurable hypotheses, and production‑ready signal roadmaps.
  • Raise team standards for feature quality, model validation, explainability, documentation, and risk‑signal governance.
  • Communicate technical recommendations, tradeoffs, limitations, and results clearly to data science peers, engineering partners, product stakeholders, risk teams, and senior leadership.
  • Mentor data scientists by improving problem framing, modeling judgment, validation rigor, code quality, and ability to operate independently in ambiguous domains.
Job Requirements
  • Master’s or Ph.D. in Computer Science, Machine Learning, Statistics, Mathematics, Data Science, or a related quantitative field.
  • 12+ years of experience in data science, applied machine learning, statistical modeling, or related technical roles.
  • Significant experience building, deploying, validating, and improving production machine learning models, risk signals, or decisioning systems.
  • Strong background in fraud detection, identity verification, trust and safety, anomaly detection, cybersecurity, risk modeling, or another adversarial data domain.
  • Expert-level SQL skills and extensive experience working with large-scale, complex, noisy datasets.
  • Strong proficiency in Python and distributed data processing frameworks such as Spark, PySpark, or equivalent tools.
  • Deep understanding of supervised learning, unsupervised learning, anomaly detection, feature engineering, model evaluation, production monitoring, and statistical validation.
  • Demonstrated ability to work with imperfect labels, delayed outcomes, telemetry artifacts, instrumentation gaps, and changing fraud patterns.
  • Strong judgment across data quality, modeling approach, feature design, explainability, operational complexity, and business impact.
  • Experience influencing data architecture, instrumentation, feature logging, and product direction through technical credibility rather than direct authority.
  • Excellent communication skills, including the ability to explain complex data science decisions and risk tradeoffs to technical and non‑technical audiences.
  • Strong mentorship skills and a track record of improving the technical quality and judgment of other data scientists.
Preferred Qualifications
  • Experience with device intelligence, browser/mobile fingerprinting, behavioral biometrics, network intelligence, VPN/proxy detection, entity resolution, or graph-based risk signals.
  • Experience designing features from high-cardinality categorical data using techniques such as aggregation, frequency encoding, target encoding, embeddings, graph features, or representation learning.
  • Experience with streaming, near‑real‑time, or low‑latency decisioning systems.
  • Familiarity with adversarial modeling, robust ML, privacy-preserving ML, interpretable ML, or responsible AI practices.
  • Hands‑on experience with ML frameworks such as scikit‑learn, XGBoost, TensorFlow, PyTorch, or similar.
  • Experience setting standards for model explainability, feature governance, validation methodology, or production ML observability.
What You’ll Gain

You will help shape a critical Digital Intelligence capability within Socure’s fraud prevention and identity verification platform, using high-scale device, network, browser, mobile, session, and behavioral telemetry to build risk signals used in real-world production decisions.

You will have meaningful ownership over ambiguous, high‑impact technical problems, from signal strategy and evaluation design to production rollout and long‑term signal quality. This role offers the opportunity to influence telemetry, product direction, and data science standards while mentoring others and deepening Socure’s ability to recognize trusted digital interactions and detect adversarial behavior.

Socure is an equal opportunity employer that values diversity in all its forms within our company. We do not discriminate based on race, religion, color, national origin, gender, sexual orientation, age, marital status, veteran status, or disability status. If you need an accommodation during any stage of the application or hiring process—including interview or onboarding support—please reach out to your Socure recruiting partner directly.

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