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Remote Data Science R Jobs in Washington, DC (NOW HIRING)

None Potential for Remote Work: ORA_ON_SITE Description SAIC is seeking Data Scientist with deep ... Strong proficiency in Python (preferred) or R , including use of standard data science libraries

Hybrid - onsite and remote Responsibilities * Collaborate with senior data scientists and leaders ... Strong programming abilities in SQL, Python, PySpark, R, or similar languages in data exploration ...

This role is a remote role preferably in the Washington DC area. As a Data Scientist, you will ... Prior programming experience, preferably in Python or R, including data exploration, feature ...

Data Scientist

Washington, DC · On-site +1

$77K - $176K/yr

You Have: * 4+ years of experience using data science programming languages, such as Python or R ... Remote : If this position is listed as remote, there may still be occasions when you are required ...

AI Data Science Domain Expert Job Type: Contractor (Part-Time) Location: Remote Job Overview We are seeking experienced AI Data Science Domain Experts to contribute their expertise to an innovative ...

New

Data Scientist, Mid

Arlington, VA · On-site +1

$69K - $158K/yr

Remote Work: No Job Number: R0248483 Location: Arlington,VA,US Share job via: Share Data Scientist ... Experience using object-oriented programming languages, including Python, R, or Java * Experience ...

Data Scientist

Washington, DC · On-site +1

$77K - $176K/yr

You Have: * Experience using data science programming languages such as Python, R, or SQL ... Remote : If this position is listed as remote, there may still be occasions when you are required ...

Data Scientist

Washington, DC · On-site +1

$103K - $120K/yr

Proficiency in diverse data science technologies (e.g., PyTorch, TensorFlow, Scikit-learn, NLP, R ... Remote position requiring availability to collaborate during core business hours (9:00 AM - 5:00 PM ...

Data Scientist, Mid

Reston, VA · On-site +1

$77K - $176K/yr

You Have: * 2+ years of experience using data science programming languages such as Python or R ... Remote : If this position is listed as remote, there may still be occasions when you are required ...

Must have a Advanced Degree (Master s or PhD) in Statistics, Applied Mathematics, Data Science ... Washington DC Metro Area - Remote (candidates MUST BE located in the National Capital Region - DMV ...

Must have a Advanced Degree (Master s or PhD) in Statistics, Applied Mathematics, Data Science ... Washington DC Metro Area - Remote (candidates MUST BE located in the National Capital Region - DMV ...

Data Scientist

Fort George G Meade, MD · Remote

$128K - $214K/yr

... Science, or related field * Proficiency with Python and R. * Experience using large data sets to ... For Remote Opportunities), education and certifications as well as Federal Government Contract ...

ICAM Data Scientist

Mclean, VA · On-site +1

$77K - $176K/yr

... or applied data science, including SQL and Python or R * Experience building dashboards or ... Remote : If this position is listed as remote, there may still be occasions when you are required ...

Showing results 21-40

Remote Data Science R information

See Washington, DC salary details

$42.5K

$139K

$222.6K

How much do remote data science r jobs pay per year?

As of Sep 13, 2026, the average yearly pay for remote data science r in Washington, DC is $139,013.00, according to ZipRecruiter salary data. Most workers in this role earn between $111,600.00 and $154,000.00 per year, depending on experience, location, and employer.

What is a remote data science R?

Remote Data Science R jobs are positions that involve using the R programming language to analyze and interpret data, build statistical models, and generate insights, all while working from a remote location. These roles typically require strong skills in data manipulation, visualization, and statistical analysis using R. Professionals in these positions may work for companies in various industries, collaborating with teams online and leveraging cloud-based tools. Remote Data Science R jobs offer flexibility, allowing individuals to work from home or anywhere with a reliable internet connection.

How do remote data science R professionals typically collaborate with cross-functional teams while working from different locations?

Remote Data Science R professionals often use a combination of communication platforms (like Slack, Microsoft Teams, or Zoom) and project management tools (such as Jira or Trello) to stay connected with colleagues in engineering, product management, and business analysis. Sharing code and models through version control systems (like Git) and documenting workflows in shared repositories helps maintain transparency and collaboration. Regular virtual meetings and presentations are crucial for aligning goals, discussing progress, and receiving feedback. This collaborative approach ensures that data-driven insights effectively support organizational objectives, even in a distributed work environment.

What are the key skills and qualifications needed to thrive as a remote data science R, and why are they important?

To thrive as a Remote Data Scientist, you need strong analytical skills, expertise in statistics, programming (Python or R), and typically a degree in data science, computer science, or a related field. Familiarity with data analysis tools, machine learning frameworks (like TensorFlow or scikit-learn), and cloud platforms (such as AWS or Google Cloud) is commonly required. Outstanding problem-solving, self-motivation, and effective virtual communication skills help you excel in remote environments. These abilities are essential for deriving actionable insights from data and collaborating efficiently across distributed teams.

What is the difference between Remote Data Science R vs Remote Data Analyst?

AspectRemote Data Science RRemote Data Analyst
Required SkillsStatistical analysis, R programming, data modeling, machine learningData visualization, basic statistical analysis, Excel, SQL
CertificationsR certifications, data science certificates, possibly advanced degreesData analysis certifications, Excel, SQL courses
Work EnvironmentCollaborative teams, research projects, data science platformsReporting, dashboards, business insights
Industry UsageTech, finance, healthcare, research institutionsMarketing, retail, finance, operations

Remote Data Science R roles focus on advanced statistical modeling and machine learning using R, often requiring specialized certifications and working on complex data projects. Remote Data Analysts typically handle data reporting, visualization, and basic analysis to support business decisions. While both roles involve data handling, Data Science R positions demand deeper technical expertise and programming skills.

What are the most commonly searched types of Data Science R jobs in Washington, DC?

The most popular types of Data Science R jobs in Washington, DC are:

What job categories do people searching Remote Data Science R jobs in Washington, DC look for?

The top searched job categories for Remote Data Science R jobs in Washington, DC are:

Data Science, AI, Statistical Modeling

Chantilly, VA • On-site, Remote

SAIC
IT Services • 10K+ employees

$160K - $200K/yr

Full-time

Posted 4 days ago


SAIC rating

7.7

Company rating: 7.7 out of 10

Based on 82 frontline employees who took The Breakroom Quiz


Job description

Job ID: 2616611

Location: Chantilly, VA, US

Date Posted: 2026-09-08

Category: Engineering and Sciences

Subcategory: Modeling/Sim Engr

Schedule: Full-Time

Shift: Day Job

Travel: No

Minimum Clearance Required: TS.SCI_wPoly

Clearance Level Must Be Able to Obtain: None

Potential for Remote Work: ORA_ON_SITE


Description

SAIC is seeking Data Scientist with deep expertise in AI/ML, advanced statistical modeling, and computer vision/OCR to design, develop, and deploy data-driven solutions that support mission-critical objectives. The ideal candidate combines strong quantitative skills with hands-on engineering experience, and can translate complex business or mission needs into scalable analytical and AI solutions.

You will work closely with subject-matter experts to understand requirements and translate those requirements into technical solutions to .to build models that extract value from structured and unstructured data, including images, documents, and text.  Additionally, the models must detect changes from a defined baseline and incorporate the results into customer required report formats.

Key Responsibilities:

AI & Machine Learning

  • Design, build, and validate machine learning models (supervised, unsupervised, and semi-supervised) for prediction, classification, clustering, and change detection..
  • Develop and maintain end-to-end ML pipelines, including data preparation, feature engineering, model training, evaluation, and deployment.
  • Apply deep learning techniques (e.g., CNNs, RNNs/LSTMs/Transformers) where appropriate to solve complex business or mission problems

Statistical Modeling & Analytics

  • Develop and apply statistical models (e.g., regression, generalized linear models, hierarchical/multilevel models, time series, survival analysis, experimental design) to support forecasting, risk assessment, and operational decision-making
  • Perform rigorous exploratory data analysis (EDA) and statistical inference to identify patterns, trends, drivers, and causal relationships
  • Design and analyze A/B tests or other experiments to measure the impact of products, policies, or processes
  • Communicate uncertainty, assumptions, and limitations of models using appropriate statistical methods

Computer Vision & OCR

  • Develop computer vision and OCR solutions for image and document understanding, including detection, classification, segmentation, and feature extraction
  • Implement document layout and entity extraction models (e.g., for forms, reports, scanned documents, PDFs) to convert unstructured visual content into structured data
  • Fine-tune or customize pre-trained vision and OCR models to specific domains, languages, and document types

Stakeholder Engagement & Communication

  • Partner with business, program, or mission owners to understand requirements, define measurable objectives, and translate them into analytical solutions
  • Present results and recommendations to technical and non-technical stakeholders through clear reports, visualizations, and briefings
  • Document methodologies, models, and processes for transparency, reproducibility, and knowledge transfer

Qualifications

Required Qualifications:

  • Active TS/SCI with Poly clearance 
  • Must be a US Citizen
  • Bachelors and five (5) years or more experience; Masters and three (3) years or more experience; PhD and 0 years related experience
  • 3–5+ years (or equivalent hands-on experience) in data science, machine learning, or applied statistics
  • Strong proficiency in Python (preferred) or R, including use of standard data science libraries 
  • Demonstrated experience building and deploying machine learning and statistical models on real-world datasets
  • Solid foundation in statistics and probability, including:
    • Hypothesis testing, confidence intervals, power analysis
    • Regression modeling (linear, logistic, regularization methods)
    • Time series or forecasting techniques
  • Hands-on experience with deep learning frameworks such as TensorFlowKeras, or PyTorch
  • Proven experience in computer vision, including at least some of:
    • Image classification, object detection, or segmentation
    • Use of CNN-based architectures (e.g., ResNet, EfficientNet, YOLO, Mask R-CNN, etc.)
  • Practical experience with OCR and document understanding, including:
    • Implementing OCR workflows with open-source or cloud-based tools
    • Pre- and post-processing of scanned documents (denoising, deskewing, layout analysis, text normalization)
  • Experience working with relational databases and SQL; familiarity with NoSQL or data lakes is a plus
  • Ability to write clean, modular, and reproducible code using version control (e.g., Git)
  • Strong problem-solving skills, attention to detail, and ability to work both independently and as part of a team
  • Strong communication skills and ability to explain technical concepts to non-technical stakeholders

Target salary range: $160,001 - $200,000. The estimate displayed represents the typical salary range for this position based on experience and other factors.

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