Senior Data Scientist

๐Ÿข FourKites ยท all FourKites jobs
๐Ÿ“ Remote ยท India
๐Ÿ“… Posted 2026-08-28 ยท via RemoteIO
๐Ÿท Data Science,Machine Learning,NLP,Python,SQL
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At FourKites we have the opportunity to tackle complex challenges with real-world impacts. Whether it's medical supplies from Cardinal Health or groceries for Walmart, the FourKites platform helps customers operate global supply chains that are efficient, agile and sustainable.

Join a team of curious problem solvers that celebrates differences, leads with empathy and values inclusivity.

As a Senior Data Scientist, you will build and own machine learning models that power core prediction problems across the FourKites platform โ€” including ETA/ATA forecasting and message-based status extraction. You will work end-to-end, from data pipeline to production deployment and monitoring, turning noisy real-world logistics data into models that run at scale and directly move the needle on customer outcomes. You will work closely with product, engineering, and operations teams, hands-on building and shipping models yourself while also guiding the technical direction of other data scientists on the team.

What you'll be doing

- Design, build, and productionize ML models for problems like ETA/ATA prediction, using regression, classification, and time-series forecasting techniques

- Develop NLP/LLM-based extraction pipelines for message-based ETA and status updates (text extraction, entity recognition)

- Own models end-to-end: data pipeline โ†’ training โ†’ deployment โ†’ monitoring โ†’ retraining

- Work with noisy, real-world logistics and supply chain data (GPS pings, check calls, carrier data) rather than clean, pre-processed datasets

- Diagnose gaps between offline evaluation performance and live production accuracy, and drive fixes

- Build and maintain automated training/retraining pipelines using orchestration tools such as Airflow

- Set up and maintain model monitoring and observability (e.g., Grafana) to catch drift and degradation proactively

- Replace manual or rule-based processes with ML-driven automation (e.g., automating manual check calls)

- Translate model performance improvements into business impact โ€” operational savings, efficiency gains, and deal-relevant outcomes

- Mentor and guide other data scientists/engineers on technical approach and best practices

- Make build-vs-buy and architecture tradeoff decisions independently

About the team

Our product and engineering teams are dedicated to providing the industry's best-in-class end-to-end supply chain visibility platform. We are committed to building a high-performing, ML-driven team that turns supply chain data into automated, proactive action โ€” and we want you to help lead that effort.

Who you are

- Strong ML fundamentals across regression, classification, and time-series forecasting

- NLP experience โ€” text extraction, entity recognition, or LLM-based extraction

- Production ML experience โ€” you've shipped models serving real traffic, not just built POCs or notebooks

- Strong Python and SQL skills โ€” pandas, scikit-learn, and comfort querying large datasets (Redshift/Snowflake a plus)

- Experience with cloud and data infrastructure โ€” AWS (S3, EC2), and orchestration tools like Airflow for training/retraining pipelines

- Experience setting up or working with model monitoring and observability tooling (Grafana or similar)

- Comfortable working with noisy, real-world data rather than clean, curated datasets

- Experience diagnosing and closing the gap between offline evaluation results and live production performance

- A track record of replacing manual/rule-based processes with ML solutions

- Ability to translate model output into business value and communicate that impact to non-technical stakeholders

- Experience collaborating cross-functionally with product, engineering, and operations teams

- Experience mentoring or guiding other data scientists or engineers

- Ability to make build-vs-buy and architecture tradeoffs independently

- A track record of reducing manual intervention or turnaround time through automation

- Excellent oral and written

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