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Senior Data Scientist Jobs in Ridgeway, SC (NOW HIRING)

Collaborate with engineering, product, and data science teams to understand requirements, incorporate stakeholder feedback, and deliver AI/ML solutions that address business and technical needs.

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

Project Overview We are currently hiring AI/ML Data Contributors to support a range of active and upcoming projects across the United States. In this role, you will participate in tasks that help ...

... Data Science, and Data Governance - Architecting and implementing cloud-based solutions meeting industry standards Travel Requirements Up to 60% Job Posting End Date The salary range for this ...

May assist more senior scientists/engineers on large, more complex projects. * Performs site visits, field observations and field data collection or assignments. * Implements technical requirements ...

As a Senior Manager, you will utilize your skills and professional network to deliver quality ... Accounting, Analytics/Data Science, Artificial Intelligence/Robotics, Business Administration ...

Data Engineer - Senior Associate

Columbia, SC ยท On-site

$77K - $202K/yr

Industry/Sector Not Applicable Specialism Data, Analytics & AI Management Level Senior Associate ... and Information Science, Systems Engineering, Electrical Engineering, Chemical Engineering ...

Mid-Level Environmental Scientist

Columbia, SC ยท Hybrid

$69K - $91K/yr

... senior staff with the preparation of technical reports, including compiling and analyzing data ... S. in biology/ecology/environmental science/natural resources or equivalent. * Have 5 to 10 years ...

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Senior Data Scientist information

See Ridgeway, SC salary details

$39.6K

$135.8K

$191.6K

How much do senior data scientist jobs pay per year?

As of Aug 24, 2026, the average yearly pay for senior data scientist in Ridgeway, SC is $135,811.00, according to ZipRecruiter salary data. Most workers in this role earn between $113,000.00 and $158,700.00 per year, depending on experience, location, and employer.

What is a senior data scientist?

A senior data scientist does complex data analysis. Job duties include gathering data and writing reports that can help people make decisions. In some cases, they may offer machine learning which is a way to help computers process and understand data. A senior data scientist may also be asked to formulate an algorithm to solve work problems. You need statistics and programming knowledge to be successful in this career.

What does a senior data scientist do?

A Senior Data Scientist leads advanced analytical projects, utilizing statistical modeling, machine learning, and data mining techniques to extract insights from large datasets. They collaborate with cross-functional teams to identify business opportunities, design predictive models, and communicate findings to stakeholders. In addition to technical expertise, they often mentor junior data scientists, help define data strategies, and ensure best practices in data analysis and model deployment.

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

To thrive as a Senior Data Scientist, you need advanced expertise in statistics, machine learning, data analysis, and programming, typically supported by a degree in a quantitative field and several years of experience. Familiarity with tools like Python, R, SQL, cloud platforms, and machine learning frameworks, as well as relevant certifications such as AWS Certified Machine Learning or TensorFlow Developer, is highly valuable. Strong problem-solving abilities, communication skills, and leadership qualities help in translating data insights into actionable business strategies and mentoring junior team members. These skills and qualities are crucial for driving impactful data-driven decisions and fostering innovation within organizations.

What are some of the main challenges senior data scientists face when leading cross-functional projects?

Senior Data Scientists often encounter challenges such as aligning project goals across diverse teams, managing expectations of non-technical stakeholders, and ensuring data quality and accessibility. Balancing long-term research initiatives with immediate business needs can also be demanding. Effective communication, project management skills, and the ability to translate complex findings into actionable insights are essential for overcoming these hurdles and driving successful outcomes.

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

AspectSenior Data ScientistData Analyst
Required CredentialsMaster's or PhD in Data Science, Statistics, or related fieldBachelor's degree in related field, often with certifications
Work EnvironmentAdvanced analytics, modeling, and machine learning projectsData reporting, visualization, and basic analysis
Employer & Industry UsageTech, finance, healthcare, and large enterprisesRetail, marketing, small to medium businesses

While both roles involve working with data, Senior Data Scientists focus on complex modeling and predictive analytics, whereas Data Analysts primarily handle data reporting and visualization. The Senior Data Scientist role requires advanced technical skills and higher education, making it suitable for more complex projects in larger organizations.

What is a senior data scientist's salary?

A senior data scientist's salary typically ranges from $100,000 to $150,000 annually, depending on experience, location, and industry. They often have advanced skills in machine learning, statistical analysis, and proficiency with tools like Python or R.
More about Senior Data Scientist jobs

What are the most commonly searched types of Data Scientist jobs in Ridgeway, SC?

The most popular types of Data Scientist jobs in Ridgeway, SC are:

What cities near Ridgeway, SC are hiring for Senior Data Scientist jobs?

Cities near Ridgeway, SC with the most Senior Data Scientist job openings:

Infographic showing various Senior Data Scientist job openings in Ridgeway, SC as of July 2026, with employment types broken down into 1% As Needed, 75% Full Time, 20% Part Time, 1% Temporary, and 3% Contract. Highlights an 86% Physical, 2% Hybrid, and 12% Remote job distribution, with an average salary of $135,811 per year, or $65.3 per hour.

Principal Machine Learning Scientist

Irmo, SC โ€ข On-site

DIESEL LAPTOPS LLC
Motor Vehicle Manufacturingย โ€ขย 11 - 50 employees

$163 - $174/hr

Other

Posted 3 days ago

New


Job description

Job Details
  • Job Location: Remote - CO - Remote, CO 80210
  • Position Type: Full Time
  • Education Level: Graduate Degree
  • Salary Range: $118.00 - $126.00
  • SalaryTravel Percentage: Negligible
  • Job Title: Principal Data Scientist, Vehicle Analytics
Company Overview

Diesel Laptops is a leading provider of diagnostic tools, repair information, software, training, and technology solutions for the commercial truck and off-highway vehicle repair industry. We help repair facilities, fleets, technicians, and industry partners reduce downtime, improve repair accuracy, and make better operational decisions.

Position Summary

The Principal Data Scientist, Vehicle Analytics, is a senior individual contributor responsible for solving complex business, vehicle, and engineering problems through statistical analysis, experimentation, predictive modeling, and applied data science.

This role partners closely with Software Engineering, Data Engineering, Product, Remote Solutions Engineering, and customer-facing teams to identify high-value problems, define analytical approaches, validate hypotheses, and deploy reliable data-driven capabilities.

Machine learning is an important part of the role, but success is defined by selecting the most appropriate analytical method for each problem rather than applying machine learning where a simpler statistical or analytical approach would be more reliable, explainable, or useful.

This position does not have routine direct reports but is expected to provide scientific leadership, technical mentorship, and guidance across the organization.

Key ResponsibilitiesData Analysis and Scientific Problem Solving
  • Investigate complex business, vehicle, and engineering problems using exploratory data analysis, statistical analysis, experimentation, and hypothesis testing.
  • Analyze vehicle telemetry, time-series data, fault codes, service history, repair outcomes, and operational data.
  • Translate ambiguous customer and business questions into measurable hypotheses, analytical plans, and actionable recommendations.
  • Identify trends, anomalies, failure patterns, and operational drivers that affect vehicle reliability, maintenance, and customer outcomes.
  • Present findings, limitations, uncertainty, and recommendations to technical and nontechnical stakeholders.
Statistical Modeling and Machine Learning
  • Design, develop, validate, and improve statistical models, anomaly-detection methods, predictive-maintenance models, classification systems, and related analytical solutions.
  • Determine whether statistical analysis, machine learning, experimentation, or another analytical method is most appropriate for the problem.
  • Define and monitor performance measures such as precision, recall, F1 score, false-positive rate, stability, latency, and business impact.
  • Document assumptions, methodology, validation results, limitations, and performance findings to ensure reproducibility and transparency.
  • Monitor deployed models and analyses and recommend retraining, redesign, or retirement when appropriate.
Data Products and Production Systems
  • Build production-ready analytical workflows, contextual tools, reports, prototypes, and model components.
  • Partner with Data Engineering and Software Engineering to productionize analyses and models using reliable pipelines, APIs, testing, observability, and deployment practices.
  • Contribute code and technical documentation using approved engineering standards.
  • Support testing, validation, monitoring, and continuous improvement of production data-science solutions.
  • Ensure analytical work is auditable, reproducible, maintainable, and appropriately documented.
Collaboration and Technical Leadership
  • Partner with Product, Engineering, Remote Solutions Engineering, Customer Success, and business leaders to identify and prioritize analytical opportunities.
  • Participate in technical design discussions, scientific reviews, code reviews, and model-validation reviews.
  • Mentor data scientists, analysts, and engineers in statistics, experimentation, analytical reasoning, and model evaluation.
  • Establish and promote best practices for analytical quality, reproducibility, documentation, and responsible model use.
  • Communicate scientific findings and recommendations to executives, customers, and other stakeholders when required.
QualificationsRequired
  • Masterโ€™s degree in Data Science, Statistics, Computer Science, Applied Mathematics, Engineering, or a related quantitative field, or equivalent advanced professional experience.
  • Seven or more years of progressive experience in applied data science, statistical modeling, machine learning, or quantitative research.
  • Demonstrated experience solving complex problems using large, imperfect, high-volume, or time-series datasets.
  • Advanced proficiency with Python and SQL.
  • Strong experience with Pandas, NumPy, SciPy, and Jupyter.
  • Strong foundation in statistics, experimental design, hypothesis testing, model validation, and communication of uncertainty.
  • Experience developing and deploying production data-science or machine-learning solutions.
  • Ability to independently define methodology, evaluate technical tradeoffs, and lead complex analytical initiatives.
  • Strong written and verbal communication skills.
Preferred Qualifications
  • PhD in Data Science, Statistics, Computer Science, Applied Mathematics, Engineering, or a related quantitative field.
  • Experience with vehicle telemetry, IoT, connected-device, fleet, transportation, predictive-maintenance, or industrial time-series data.
  • Experience with anomaly detection, equipment-failure prediction, maintenance optimization, natural-language processing, or large language models.
  • Experience with dbt, Dagster, Apache Flink, ClickHouse, PostgreSQL, Apache Iceberg, Docker, and MLflow.
  • Experience producing statistically valid customer-facing analyses, technical case studies, or research reports.
  • Publication, patent, or significant applied-research experience.
Core Technologies
  • Python
  • SQL
  • Pandas
  • NumPy
  • SciPy
  • Jupyter Notebooks
  • dbt
  • Dagster
  • Apache Flink
  • ClickHouse
  • PostgreSQL
  • Apache Iceberg
  • Git
  • GitHub
  • Docker
  • MLflow
Position Details
  • Full-time
  • Exempt
  • Principal individual-contributor role
  • Remote within the United States, with hybrid eligibility in Columbia, South Carolina
  • Occasional travel may be required
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