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Data Scientist Intern Jobs in Colorado (NOW HIRING)

The Data Scientist plays a critical role in advancing Vantage's analytics, automation, and data-driven decision-making capabilities across North America. This role develops, operationalizes, and ...

$35/hr

As an intern, you won't just observe -- you'll contribute to meaningful projects, gain exposure to ... Opportunities Available As a Real-World Evidence Data Science intern at Stryker, you will: * Work ...

$35/hr

As an intern, you won't just observe -- you'll contribute to meaningful projects, gain exposure to ... Opportunities Available As a Real-World Evidence Data Science intern at Stryker, you will: * Work ...

$35/hr

As an intern, you won't just observe -- you'll contribute to meaningful projects, gain exposure to ... Opportunities Available As a Real-World Evidence Data Science intern at Stryker, you will: * Work ...

$35/hr

As an intern, you won't just observe -- you'll contribute to meaningful projects, gain exposure to ... Opportunities Available As a Real-World Evidence Data Science intern at Stryker, you will: * Work ...

Data Scientist

Boulder, CO ยท On-site

$100 - $125/hr

Our team brings together engineers, data scientists, economists, and policy experts to help create ... intern positions. This service is for individuals requiring reasonable accommodation requests.

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Data Scientist Intern information

See Colorado salary details

$48.4K

$173.5K

$256K

How much do data scientist intern jobs pay per year?

As of Sep 8, 2026, the average yearly pay for data scientist intern in Colorado is $173,519.00, according to ZipRecruiter salary data. Most workers in this role earn between $140,400.00 and $178,800.00 per year, depending on experience, location, and employer.

What is a data scientist intern?

Data Scientist Interns are individuals, often students or recent graduates, who work temporarily in organizations to gain practical experience in data science. Their main responsibilities include collecting, cleaning, analyzing, and visualizing data under the guidance of experienced data scientists. Interns may also assist in building machine learning models, generating reports, and presenting insights to help solve real business problems. The internship provides valuable hands-on experience and helps interns develop technical and analytical skills necessary for a full-time data science role.

What types of projects and tasks can I expect to work on as a data scientist intern?

As a Data Scientist Intern, you can expect to work on a variety of data-driven projects such as cleaning and analyzing datasets, building predictive models, and generating data visualizations to support business decisions. You'll often collaborate with other data scientists, engineers, and business teams to tackle real-world problems and may be asked to present your findings to stakeholders. These experiences are designed to help you develop technical skills, gain exposure to industry tools and methodologies, and understand how data science contributes to organizational goals.

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

To thrive as a Data Scientist Intern, you generally need a strong foundation in statistics, programming (often Python or R), and data analysis, often supported by coursework in computer science or related fields. Familiarity with tools such as Jupyter Notebook, SQL, and machine learning libraries like scikit-learn or TensorFlow is typically expected. Strong problem-solving skills, curiosity, and effective communication set standout candidates apart in this role. These skills and qualities are crucial for extracting insights from data, collaborating with diverse teams, and contributing meaningful solutions to real-world problems.

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

AspectData Scientist InternData Analyst Intern
Required CredentialsTypically pursuing or holding a degree in Data Science, Computer Science, or related fieldsUsually pursuing or holding a degree in Statistics, Mathematics, or related fields
Work EnvironmentInvolves building predictive models, machine learning, and advanced analyticsFocuses on data cleaning, reporting, and descriptive analytics
Employer & Industry UsageUsed in tech, finance, healthcare, and large enterprises for complex data projectsCommon in retail, marketing, and business intelligence roles across industries

While both roles involve working with data, a Data Scientist Intern typically engages in advanced analytics and machine learning projects, whereas a Data Analyst Intern focuses on data reporting and descriptive analysis. The roles differ mainly in complexity and technical skills required, but both serve as entry points into data-driven careers.

What are the most commonly searched types of Data Scientist jobs in Colorado?

The most popular types of Data Scientist jobs in Colorado are:

What cities in Colorado are hiring for Data Scientist Intern jobs?

Cities in Colorado with the most Data Scientist Intern job openings:

Infographic showing various Data Scientist Intern job openings in Colorado as of August 2026, with employment types broken down into 1% As Needed, 85% Full Time, 11% Part Time, 1% Temporary, and 2% Contract. Highlights an 85% Physical, 4% Hybrid, and 11% Remote job distribution, with an average salary of $173,519 per year, or $83.4 per hour.

Data Scientist, NA

Vantage Data Centers

Denver, CO โ€ข On-site

Full-time

Medical, Dental, Vision, Life, Retirement, PTO

Re-posted yesterday


Key responsibilities

  • Develop predictive and prescriptive models to support operational forecasting, capacity planning, energy optimization, and reliability analysis.

  • Integrate analytical models into operational workflows and identify opportunities for automation to streamline manual processes.

  • Partner with Data Engineering and Enterprise Architecture to ensure data pipelines support model accuracy, reliability, and alignment with long-term technology strategy.


Job description

About Vantage


Vantage powers, cools, protects and connects the technology of the world's well-known hyperscalers, cloud providers and large enterprises. Developing and operating across North America, EMEA and Asia Pacific, Vantage has evolved data center design in innovative ways to deliver dramatic gains in reliability, efficiency and sustainability in flexible environments that can scale as quickly as the market demands.

Strategy and Transformation

The Strategy and Transformation department is a dynamic and integral component of our business strategy, dedicated to enhancing our market position, business intelligence, and insights through data analysis.

Position Overview

This role will be based in Denver, CO. Following our flexible work policy (3 days in-office, 2 days flexible).

The Data Scientist plays a critical role in advancing Vantage's analytics, automation, and data-driven decision-making capabilities across North America. This role develops, operationalizes, and scales analytical models that improve forecasting accuracy, optimize data center performance, and enhance operational reliability across Vantage's rapidly expanding portfolio.

The Data Scientist partners closely with Operations, Engineering, Capacity Planning, Finance, Energy & Sustainability, and the Global Data Strategy team to transform raw operational data into actionable insights. This role designs and deploys predictive and prescriptive models that support capacity forecasting, energy optimization, anomaly detection, asset lifecycle management, and customer experience improvements.

Operating across regions and collaborating with global stakeholders, the Data Scientist ensures analytical models align with enterprise data architecture, governance standards, and long-term technology strategy. The role contributes to the evolution of Vantage's data platform, enabling scalable analytics capabilities that support growth, reduce operational friction, and strengthen decision quality across the business.

Essential Job Functions

Data Science Strategy & Model Development

  • Develop predictive and prescriptive models that support operational forecasting, capacity planning, energy optimization, and reliability analysis.

  • Identify high-value analytical opportunities across Operations, Engineering, and Customer Experience.

  • Build scalable machine learning pipelines that integrate with enterprise data platforms.

  • Evaluate model performance and implement continuous improvement mechanisms.

  • Result: High-impact analytical models that improve operational efficiency, reliability, and decision quality.

Workflow Integration & Automation

  • Integrate analytical models into operational workflows, including maintenance planning, incident response, and capacity forecasting.

  • Identify opportunities for automation and develop algorithms that streamline manual processes.

  • Result: Analytical capabilities embedded directly into operational workflows, improving speed, accuracy, and consistency.

Enterprise Data Alignment & System Integration

  • Define analytical requirements that inform data engineering, data quality, and data governance priorities.

  • Partner with Data Engineering to ensure data pipelines support model accuracy and reliability.

  • Collaborate with Enterprise Architecture to align analytical solutions with long-term technology strategy.

  • Support reduction of data silos and technical debt through disciplined data integration practices.

  • Result: A unified data ecosystem that enables scalable, reliable analytics across the enterprise.

Performance Measurement & Model Governance

  • Define KPIs and validation frameworks to measure model performance and business impact.

  • Ensure models adhere to governance standards, including version control, documentation, and reproducibility.

  • Partner with Operations leadership to ensure analytical outputs reflect real-world operational conditions.

  • Strengthen the linkage between model performance, operational reliability, and business outcomes.

  • Result: Analytical models that are trusted, transparent, and aligned with operational realities.

Additional Duties

  • Handle additional duties as assigned by management.

Job Requirements

  • Bachelor's degree in a quantitative discipline.

  • Master's degree preferred.

  • 5-8+ years of experience in data science, machine learning, and software engineering.

  • Experience with Full Stack AI assisted development and deployment.

  • Experience working with large-scale operational, IoT, or industrial datasets strongly preferred.

  • Background in predictive modeling, time-series forecasting, anomaly detection, and optimization algorithms.

  • Experience with Azure and Databricks.

  • Familiarity with data center operations, energy systems, or mission-critical environments preferred.

  • Experience collaborating with cross-functional teams in matrixed organizations.

  • Experience deploying models into production environments and integrating with enterprise systems.

  • Strong proficiency in Python, SQL, and machine learning frameworks (scikit-learn, TensorFlow, PyTorch).

  • Expertise in time-series modeling, statistical analysis, and data visualization.

  • Ability to translate complex analytical concepts into clear business language.

  • Strong understanding of data engineering principles and model lifecycle management.

  • Ability to work across Operations, Engineering, IT, and Data teams.

  • Strong communication, structured problem solving, and executive-ready storytelling.

  • Ability to balance analytical rigor with operational practicality.

  • Travel required is expected to be up to 20%, but may increase over time as business evolves

Physical Demands and Special Requirements

The physical demands described here are representative of those that must be met by an employee to successfully perform the essential functions of this job. Reasonable accommodations may be made to enable individuals with disabilities to perform the essential functions.

While performing the duties of this job, the employee is occasionally required to stand; walk; sit; use hands to handle, or feel objects; reach with hands and arms; climb stairs; balance; stoop or kneel; talk and hear. The employee must occasionally lift and/or move up to 25 pounds.

Additional Details

  • Salary Range: $140,000 - $150,000 Base + Bonus (this range is based on Colorado market data and may vary in other locations)

  • This position is eligible for company benefits including but not limited to medical, dental, and vision coverage, life and AD&D, short and long-term disability coverage, paid time off, employee assistance, participation in a 401k program that includes company match, and many other additional voluntary benefits.

  • Compensation for the role will depend on a number of factors, including your qualifications, skills, competencies, and experience and may fall outside of the range shown.

We operate with No Ego and No Arrogance. We work to build each other up and support one another, appreciating each other's strengths and respecting each other's weaknesses. We find joy in our work and each other, actively seeking opportunities to inject fun into what we do. Our hard and efficient work is rewarded with an above market total compensation package. We offer a comprehensive suite of health and welfare, retirement, and paid leave benefits exceeding local expectations.


Throughout the year, the advantage of being part of the Vantage team is evident with an array of benefits, recognition, training and development, and the knowledge that your contribution adds value to the company and our community.


Don't meet all the requirements? Please still apply if you think you are the right person for the position. We are always keen to speak to people who connect with our mission and values.


Vantage is an Equal Opportunity Employer.

Vantage does not accept unsolicited resumes from search firm agencies. Fees will not be paid in the event a candidate submitted by a recruiter without an agreement in place is hired; such resumes will be deemed the sole property of Vantage.


We'll be accepting applications for at least one week from the date this role is posted. If you're interested, we encourage you to apply soon-we're excited to find the right person and will keep the role open until we do!