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Sperry Rail, Inc.
Lead Data Scientist, Rail Data and Risk
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What they do
A Data Scientist utilizes skills and experience to systematically answer questions using data to provide actionable recommendations. Commonly utilizes advanced statistical analysis and machine learning techniques. Common responsibilities also include data cleaning and data management.
$110,146 / year median in Connecticut
+15% projected growth
Job Description
About Sperry:
Sperry Rail is on a mission-critical journey to revolutionize the Rail Flaw Detection industry. Through the continuous development of cutting-edge diagnostic technologies and AI-assisted analysis, we are transforming railway safety worldwide. Our global engineering teams work collaboratively to develop step-change technologies that define Sperry as the unparalleled market leader. For nearly a century, we have repeatedly modernized and improved rail diagnostics through our relentless pursuit of improvement. Determined is an understatement. We are obsessed with advancing science and raising the bar on what's possible with our ever-improving suite of products and service offerings. Emboldened through the shared values of honesty, accountability, passion, integrity, and teamwork, we are driven by the challenge and bridging concepts with fruition. Each technologist entering Sperry imprints themselves into our brand and further galvanizes a culture of innovation and advancement. Allow us to be clear, Thought Leaders are welcome! We are agile and hungry and invite those with similar passions to join us in challenging the status quo and bringing new ideas to the market. Fast-paced, high-touch with a distinct sense of purpose. We offer more than a job; we offer an opportunity to be part of something different. Role Summary As Lead Data Scientist, Rail Data and Risk, you will build Sperry's view of where risk sits in our customers' track and how it is changing. We run non-stop inspection across North America and hold years of ultrasonic, induction, and eddy current test data.Your first job is descriptive:
where defects and surface conditions are concentrated, and how they are trending.The second is predictive:
where failure is likely, and what it would cost. These are different problems, and the expectation is that you compound toward all of them rather than arrive expert in each. What makes the role senior is the second half of it. The analysis only counts once it reaches the people who act on it- our commercial team, the analysts reviewing that track, and our customers.
- it inspires those around you to aim higher.
- internal flaw detection, induction, and eddy current
- for defect growth and surface condition degradation across our non-stop inspection programs in North America Connect raw test measurements and their metadata to the physical conditions they represent: internal defects, surface conditions, rail flaws Analyze defect and error types and frequency by subdivision to identify where risk is concentrated and how it moves Apply risk-based models to estimate the probability and consequence of failure • Own the KPIs for the monthly operational review and customer account review meetings • Present findings to the commercial team in a form they can use in account conversations • Work with the analysis organization so that what the data shows about defect and surface-condition patterns reaches the analysts reviewing that track Present risk findings to customers alongside the commercial team Identify gaps in current data collection and recommend what Sperry should capture to support better analysis Validate findings against field conditions with track engineering and testing teams Hire and line manage the two further seats in the pod, and direct their work Write and maintain documentation so that the analysis is transferable rather than held tacitly Required Skills & Qualifications • Statistical depth: probability, hypothesis testing, regression analysis, time series analysis • SQL and Python, or equivalent analysis tooling Risk modelling or reliability engineering GIS or geospatial data analysis Experience applying statistical and risk-modelling methods to physical or engineered systems•rail, industrial, energy, or a comparable setting Demonstrable experience managing staff across the full employee lifecycle A credible and confident communicator, written and verbal, at all levels of a business Ability to make effective decisions and to keep calm under pressure High level of honesty and integrity A collaborative, team-first mindset aligned with our values of being Humble, Hungry, and Smart Qualifications and years of experience are indicative guidelines, not mandatory requirements.
- for example pipeline integrity, highway, or utility corridor work Rail or transportation specifically Sensing technologies: ultrasonics, induction, eddy current