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Provider Data Remote Jobs in Chicago, IL (NOW HIRING)

Sr. Data Scientist

Chicago, IL ยท Remote

$85 - $100/hr

Remote Contract Pay: $85/hr - $100/hr The Senior Data Scientist will design and implement AI ... Mentor junior data scientists by providing technical guidance, reviewing work, and fostering their ...

Data Architect, Next Platform

Chicago, IL ยท On-site +1

$150K - $200K/yr

... providing critical information about the right treatments for the right patients, at the right time ... Additionally, for remote roles open to individuals in unincorporated Los Angeles - including remote ...

Data Security Consultant

Chicago, IL ยท On-site +1

$130K - $150K/yr

Technical advisory - Provide guidance to technology and project teams on data security requirements ... remote (if non-local) or hybrid work arrangement where you'll spend 2 days per week on-site in ...

Data Security Consultant

Chicago, IL ยท On-site +1

$130K - $150K/yr

Technical advisory - Provide guidance to technology and project teams on data security requirements ... remote (if non-local) or hybrid work arrangement where you'll spend 2 days per week on-site in ...

Data Scientist

Northbrook, IL ยท Remote

$80K - $120K/yr

We also provide full-time employees with paid time off including vacation (15 days), holiday ... Accepting applications until 12/15/2026 #LI-SG2 #LI-Remote * Process, cleanse, and verify the ...

Data Scientist

Northbrook, IL ยท Remote

$80K - $120K/yr

We also provide full-time employees with paid time off including vacation (15 days), holiday ... Accepting applications until 12/15/2026 #LI-SG2 #LI-Remote * Process, cleanse, and verify the ...

Sr. Data Analyst

Chicago, IL ยท Remote

$88K - $111K/yr

Provide support as needed for all BI applications. Candidate Profile * Minimum of 5 years hands on ... Must be able to work with the remote based BI team, and offshore development team, staying closely ...

We're also the only provider of a fully integrated, cloud-based Software-as-a-Service (SaaS ... Ability to work in a fully remote environment (must be based in the U.S. and willing to work in ...

Showing results 41-60

Provider Data Remote information

What is the difference between Provider Data Remote vs Provider Data Specialist?

AspectProvider Data RemoteProvider Data Specialist
CredentialsTypically requires healthcare data management certifications or relevant experienceOften requires similar certifications, such as medical coding or data management credentials
Work EnvironmentRemote, often independent or team-based in healthcare organizationsPrimarily office or healthcare facility-based, but can include remote options
Industry UsageCommonly used in healthcare, insurance, and medical data management

Provider Data Remote and Provider Data Specialist roles share similar credentials and industry usage, focusing on healthcare data management. The main difference lies in the work setting, with Provider Data Remote working primarily remotely, offering flexibility, while Provider Data Specialist roles may be more office-based. Both roles are essential for maintaining accurate provider information in healthcare systems.

What does a Provider Data Remote do?

A Provider Data Remote is responsible for managing and maintaining healthcare provider information, such as credentials, contact details, and contract status, within a healthcare organization's database. This role is typically performed remotely and involves verifying data accuracy, updating records, and ensuring compliance with regulatory requirements. Provider Data Remotes collaborate with providers, insurance companies, and internal teams to resolve discrepancies and support network operations. Strong attention to detail, data management skills, and familiarity with healthcare terminology are essential for success in this position.

What are some common challenges faced by Provider Data Remote, and how can they be managed?

Provider Data Remote professionals often encounter challenges such as managing large volumes of complex provider information, ensuring data accuracy, and keeping up with frequent updates from multiple sources. Working remotely can also mean collaborating with cross-functional teams in different locations, which requires strong communication and organizational skills. To manage these challenges, it's helpful to use standardized data management tools, establish clear communication protocols with team members, and stay updated on industry regulations related to provider data.

What are the key skills and qualifications needed to thrive as a Provider Data Remote?

To thrive as a Provider Data Remote specialist, you need strong attention to detail, data entry proficiency, knowledge of healthcare terminology, and typically an associate's or bachelor's degree in a related field. Familiarity with provider data management systems, Microsoft Excel, and claims processing software is commonly required, along with experience using databases like Facets or CAQH. Excellent organizational skills, problem-solving abilities, and clear communication help you stand out in this role. These skills ensure the accuracy and integrity of provider data, supporting efficient healthcare operations and compliance.
What are the most commonly searched types of Provider Data jobs in Chicago, IL? The most popular types of Provider Data jobs in Chicago, IL are:
What cities near Chicago, IL are hiring for Provider Data Remote jobs? Cities near Chicago, IL with the most Provider Data Remote job openings:

Sr. Data Scientist

Addison Group

Chicago, IL โ€ข Remote

$85 - $100/hr

Contractor

Re-posted yesterday


Job description

Position Title: Senior Data Scientist

Remote/Onsite : Remote

Contract

Pay: $85/hr - $100/hr

Job Description: 

The Senior Data Scientist will design and implement AI, Machine Learning, and Operations Research models that transform business objectives into data-driven solutions. This role advances the mission by optimizing decisions, improving operations, and enhancing guest experiences through applied analytics and innovation. The position responsibilities outlined below are not all encompassing. Other duties, responsibilities, and qualifications may be required and/or assigned as necessary.

POSITION RESPONSIBILITIES:

• Translate business problems in a variety of business areas into well-defined data science projects, ensuring alignment with business goals, scope, and defined KPIs.

• Design, implement, and optimize advanced machine learning and optimization models to address complex business challenges.

•Collaborate with cross-functional teams, including engineering, data, and business stakeholders, ensuring clear communication, seamless integration of data-driven solutions.

• Monitor model performance in production, refining algorithms and processes to adapt to real-world data and evolving business needs.

• Create and maintain detailed documentation for models, methodologies, and workflows to support team knowledge-sharing.

• Conduct testing and validation of models to ensure robustness, scalability, and reliability in production environments.

• Present data-driven insights, findings, and product outcomes to stakeholders in a clear, actionable manner.

• Stay updated on the latest advancements in machine learning and optimization, integrating innovative techniques and tools into projects.

• Mentor junior data scientists by providing technical guidance, reviewing work, and fostering their professional development.

• Demonstrate a commitment to ethical data science, ensuring models and solutions are developed with fairness, transparency, and integrity.

EXPERIENCE AND QUALIFICATIONS:

Required Skills -

• Expertise in operations research modeling (LP, IP, MIP) and tools (CPLEX, Gurobi, etc).

• Expertise in building machine learning models, including supervised, unsupervised, and deep learning methods.

• Expertise in feature engineering, model evaluation, and hyperparameter tuning.

• Expertise in Python, SQL, and Spark, and a broad array of machine learning frameworks (Scikit-Learn, XGBoost, Tensorflow, PyTorch, MXNet, LLM, etc).

• Experience in developing and deploying solutions in a Cloud environment (AWS, Azure, GCP) with large datasets.

• Experience with streaming data architectures.

• Experience operating in an Agile Methodology environment.

• Experience with DevOps and CI/CD concepts.

• Excellent communication and teamwork skills.

PREFERRED SKILLS:

• Exposure to hospitality, travel, or service industry data and optimization use cases.

• Strong understanding of data architecture and MLOps best practices.

• Proven ability to translate complex analytics into business impact.

• Passion for continuous learning and innovation in applied data science.

EDUCATION:

Master’s degree in computer science, statistics, industrial engineering, or related fields required, PhD preferred

5+ years of experience in data science, operations research, or related area (2+ years for candidates with PhD).

Position Responsibilities

• Translate risk management business requirements into well-defined data science solutions, includin

g incident prioritization and claim severity classification.

• Profile, clean, and prepare claims and incident data for analytics, modeling, and scoring.

• Develop feature engineering logic using structured and unstructured claims and incident data.

• Apply NLP and text-processing techniques to claim and incident narratives to extract useful risk signals.

• Develop record-linkage approaches to connect incidents and claims when a clean unique identifier is not available.

• Build and validate models that rank incidents by likelihood of becoming claims or requiring Risk Management intervention.

• Build and validate claim severity models that classify claims by likely financial impact and high-dollar claim risk.

• Generate explainability outputs, including key risk drivers and business-readable reasons for flagged incidents or claims.

• Collaborate with Risk Management, Legal, Data Engineering, BI, Data Governance, and MLOps partners to deliver usable business outputs.

• Monitor model performance, drift, scoring quality, and retraining needs.

• Document modeling assumptions, feature logic, validation results, limitations, and handoff requirements.

• Ensure data science work follows data governance expectations, including appropriate handling of PII and sensitive fields.

• Present findings, model results, and recommendations to business and technical stakeholders in a clear, actionable manner.

Deliverables

The Sr Data Scientist will design and implement machine learning and NLP solutions for a claims and 

incident mitigation analytics project. This role will help risk management teams identify high-risk incidents earlier, classify claims by likely severity and financial impact, and provide explainable insights that support faster intervention. The position responsibilities outlined below are not all encompassing. Other duties, responsibilities, and qualifications may be required and/or assigned as necessary.