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Data Science Engineer Jobs in Denver, CO (NOW HIRING)

Data Science Engineer

Westminster, CO · On-site

$100K - $140K/yr

Our client is currently seeking a Data Science Engineer Location : Onsite in Westminster, CO Salary Range : $90K-$110K About the Role Our client is an innovative and mission-focused organization ...

New

Work you'll do As an AI and Data Science Engineer III on the AI & Data team, you will be responsible for driving technology-focused client delivery across complex engagements. Working within an ...

This is not a pure people-management role. • Building, mentoring, and guiding a pragmatic, delivery-focused team of Junior Data Scientists and Machine Learning Engineers, fostering a culture of ...

In this role, you will work at the intersection of data science and software engineering, developing models and algorithms that extract actionable insights from large datasets while ensuring the ...

Data Science Team Leader

Denver, CO · On-site

$155K - $165K/yr

Exceptional programming skills in Python and deep expertise in data science libraries (Scikit-learn, Pandas, NumPy, XGBoost, etc.). * Advanced SQL proficiency for querying and manipulating large ...

Exceptional programming skills in Python and deep expertise in data science libraries (Scikit-learn, Pandas, NumPy, XGBoost, etc.).  * Advanced SQL proficiency for querying and manipulating large ...

Exceptional programming skills in Python and deep expertise in data science libraries (Scikit-learn, Pandas, NumPy,XGBoost, etc.). * Advanced SQL proficiency for querying and manipulating large ...

Data Scientist

Boulder, CO · On-site

$130K - $160K/yr

DEEP DIVE INTO THIS ROLE As a Data Scientist, you'll analyze large datasets, develop predictive models, and work with engineering teams to integrate your solutions into production. Key ...

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Data Science Engineer information

See Denver, CO salary details

$45.6K

$133K

$182K

How much do data science engineer jobs pay per year?

As of Jul 31, 2026, the average yearly pay for data science engineer in Denver, CO is $133,018.00, according to ZipRecruiter salary data. Most workers in this role earn between $117,400.00 and $141,000.00 per year, depending on experience, location, and employer.

What engineers make 500,000?

Senior data science engineers, machine learning engineers, and software engineers with extensive experience and advanced skills in areas like AI, big data, and cloud computing can earn salaries of $500,000 or more, especially in high-cost-of-living regions or within top tech companies. Achieving this level often requires advanced degrees, certifications, and a strong track record of impactful projects.

Is 30 too late for data science?

Data Science Engineers can enter the field at any age, including 30, as success depends on skills, experience, and continuous learning. Many professionals transition into data science later in their careers by acquiring relevant knowledge in programming, statistics, and tools like Python or R. Age is less important than demonstrated expertise and the ability to adapt to evolving technologies.

What are the key skills and qualifications needed to thrive in the Data Science Engineer position, and why are they important?

A Data Science Engineer should have a strong background in statistics, machine learning, programming (typically Python or R), and data engineering, often supported by a degree in computer science, engineering, or a related field. Familiarity with data processing frameworks (like Spark or Hadoop), cloud platforms (AWS, GCP, or Azure), and certifications in data science or cloud technology are highly valued. Excellent problem-solving skills, communication abilities, and collaboration are essential soft skills for working effectively in cross-functional teams. These competencies enable Data Science Engineers to build scalable data solutions, deliver actionable insights, and drive business impact.

What are the typical daily responsibilities of a Data Science Engineer?

Data Science Engineers typically spend their days designing and building data pipelines, preparing and cleaning large datasets, and developing machine learning models to solve business problems. They work closely with data scientists, software engineers, and business stakeholders to translate requirements into scalable technical solutions. Responsibilities also include deploying models to production, monitoring their performance, and iterating on solutions based on feedback. This role offers a dynamic mix of coding, data analysis, and teamwork, making each day varied and intellectually engaging.

What is a Data Science Engineer job?

A Data Science Engineer is a professional who bridges the gap between data science and software engineering. They focus on designing, building, and maintaining scalable data pipelines, infrastructure, and machine learning models for production use. Their role involves data preprocessing, model deployment, performance optimization, and integrating AI solutions into applications. They work closely with data scientists, software engineers, and DevOps teams to ensure efficient data workflows.

What does a data science engineer do?

A data science engineer designs, develops, and maintains data pipelines and infrastructure to support data analysis and machine learning models. They work with large datasets, use programming languages like Python or Scala, and often collaborate with data scientists and software engineers to ensure data quality and accessibility.

Is data science high paying?

Data science engineers typically earn high salaries due to their specialized skills in statistical analysis, programming, and machine learning. Salaries vary by experience, location, and industry, but data science roles are generally considered well-compensated within the tech field.
What are the most commonly searched types of Data Science Engineer jobs in Denver, CO? The most popular types of Data Science Engineer jobs in Denver, CO are:
What are popular job titles related to Data Science Engineer jobs in Denver, CO? For Data Science Engineer jobs in Denver, CO, the most frequently searched job titles are:
What job categories do people searching Data Science Engineer jobs in Denver, CO look for? The top searched job categories for Data Science Engineer jobs in Denver, CO are:
What cities near Denver, CO are hiring for Data Science Engineer jobs? Cities near Denver, CO with the most Data Science Engineer job openings:
Infographic showing various Data Science Engineer job openings in Denver, CO as of July 2026, with employment types broken down into 1% As Needed, 82% Full Time, 12% Part Time, 1% Temporary, and 4% Contract. Highlights an 88% Physical, 3% Hybrid, and 9% Remote job distribution, with an average salary of $133,018 per year, or $64 per hour.

Data Science Engineer

Judge Group, Inc.

Westminster, CO • On-site

$100K - $140K/yr

Other

Posted yesterday

New


Job description

Location: Westminster, CO Salary: $100,000.00 USD Annually - $140,000.00 USD Annually Description: Our client is currently seeking a Data Science Engineer
Location: Onsite in Westminster, CO
Salary Range: $90K-$110K
About the Role
Our client is an innovative and mission-focused organization seeking an experienced, driven Data Science Engineer. In this role, you will develop the machine-learning components and integration infrastructure that support the company's space domain awareness (SDA) analytics pipelines. Across various programs, you will build trajectory-classification and anomaly-detection models that operate on orbit-determination output. You will also build and maintain the benchmarking and evaluation frameworks necessary to ensure these pipelines perform accurately under sparse, gapped, and noisy observation conditions.
A strong emphasis is placed on characteristics that determine real-world operational value: managing false-positive behavior under degraded observations, calibrating confidence metrics suitable for operator use, and ensuring inference costs remain compatible with constrained onboard processing. You will work closely with astrodynamics and embedded-systems teams to ensure that models reflect genuine dynamical structures and can be successfully deployed within strict onboard resource limits.
Why Join Us?
Impact: Be part of a collaborative, innovative, and mission-focused environment where your ideas and skills have a significant, real-world impact.
Growth: Help shape the company culture, set the foundation for future success, and build world-class teams.
Compensation: Enjoy a competitive salary, comprehensive benefits, and an attractive equity package.
Responsibilities
Develop AI/ML models for trajectory classification across various orbit regimes and families, and for the detection of anomalous dynamical behavior.
Integrate and maintain end-to-end analytical pipelines spanning observation processing, hypothesis generation, orbit estimation, propagation, and classification.
Define system interfaces and take full ownership of a shared, reproducible codebase.
Build benchmarking and evaluation frameworks to measure estimator convergence behavior, classification accuracy and confusion structure, false-positive/negative characterization, time-to-custody, and sensitivity to track gaps and elevated measurement uncertainty.
Design experiments that distinguish genuine model generalization from dataset artifacts-including held-out families, degraded-observation ablations, and cross-checks against independent reference datasets.
Produce calibrated confidence metrics suitable for downstream operational use, documented precisely enough to support critical operator decisions.
Partner with embedded-systems staff to characterize model complexity, memory footprint, and inference latency; identify quantization, pruning, or architectural simplifications that meet deployment constraints.
Contribute machine-learning expertise to CONOPS and systems-engineering activities, including data-flow definition, model lifecycle and retraining considerations, and the identification of critical technology elements.
Minimum Qualifications
BS or MS in Computer Science, Applied Mathematics, Statistics, Aerospace Engineering, Physics, or a related quantitative field.
4+ years of applied machine learning experience (or equivalent).
Strong proficiency in Python and the scientific stack (NumPy, SciPy, pandas).
Fluency in at least one deep-learning framework (PyTorch is strongly preferred).
Demonstrated experience building ML systems on time-series, sequential, or state-estimation-adjacent data, rather than just tabular or vision benchmarks.
Sound understanding of evaluation methodology, including class imbalance, calibration, uncertainty quantification, and the failure modes of small or synthetically generated datasets.
Strong software-engineering discipline sufficient for a shared codebase, including version control, testing, reproducible environments, and documented interfaces.
Clear technical writing skills for producing high-quality customer-facing deliverables.
Must be able to obtain and hold a U.S. security clearance.
Preferred Qualifications
Experience with physics-informed ML or hybrid approaches that embed dynamical structure into learned models.
Familiarity with orbit determination, tracking, or multi-target data association (e.g., JPDA, MHT, or similar).
Prior experience with model compression, quantization, or deployment to constrained and embedded targets.
Prior work on government R&D programs (SBIR/STTR, AFRL, DARPA, Space Force) and familiarity with Technology Readiness Level (TRL) terminology.
Experience with anomaly detection in environments where anomalies are rare, poorly labeled, or defined purely by a physical model.
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This job and many more are available through The Judge Group. Please apply with us today!