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Sr. Data Scientist C2C contract Dallas, TX Hybrid
Job in
Dallas, Dallas County, Texas, 75215, USA
Listed on 2026-08-13
Listing for:
Tech Mirrors
Full Time, Contract
position Listed on 2026-08-13
Job specializations:
-
IT/Tech
Machine Learning/ ML Engineer, Data Scientist, Data Engineering, AI Engineer (Applied/Software)
Job Description & How to Apply Below
Sr. Data Scientist
Location:
Dallas, TX Hybrid
3+ years of experience.
Minimum Qualifications – Education & Prior Job Experience- Master’s/PhD degree with 3+ years of experience in quantitative discipline (e.g., Data Science, Machine Learning Engineer, Computer Science, Applied Mathematics, Statistics, etc.)
- Experience with Python programming language
- Practical experience with data extraction, cleaning, and analysis
- Depth of knowledge in statistical and machine learning technique
- 8+ years of experience in a technical professional environment, in addition to the minimum requirements
- Experience with SQL and data visualization (Tableau, PowerBI)
- Practical experience designing, building and deploying machine learning models
- Experience in using cloud platforms and parallel processing to scale model development/ deployment (Databricks, Azure)
- Domain knowledge in the airline industry
- Experience working in a consulting role
- Ability to effectively communicate both verbally and written with all levels within the organization
- Demonstrated motivation and aptitude for logical analysis, problem identification, and problem solving
- Ability to view data from different angles to employ feature engineering techniques to better represent models
- Ability to work on a diverse team with diverse skillsets
- MS or PhD in Data Science, Computer Science, Statistics, or related field
- Strong Python expertise (production-grade coding, modularization, testing, performance tuning)
- Hands‑on experience with Machine Learning pipeline development and productionization (model deployment, orchestration, monitoring, and optimization)
- Experience with Databricks / Spark-based ML pipelines
- Proficiency in SQL and working with large-scale datasets
- Experience with ML lifecycle tools (e.g., MLflow, CI/CD, model monitoring)
- Has proven experience taking ML models from prototype to production with Python and Databricks.
- Demonstrates strong skills in code optimization, debugging, and system integration.
- Understands the end‑to‑end ML lifecycle, including deployment and monitoring.
- Is comfortable working with existing codebases and improving them, rather than only building new models.
- Clear communication and effective collaboration.
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