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Please note that the following enhanced screening and interview requirements apply to this role: Virtual backgrounds or headphones / earbuds are not permitted during web-based interviews. Additionally, a minimum of one onsite, in person interview will be required as part of the application process. By choosing to apply, you acknowledge and agree to these requirements.
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What you’ll need to succeed as an Applied AI Scientist at XPO:
Minimum qualifications:
- Bachelor's degree or equivalent related work or military experience
- 1 year of experience designing evaluation harnesses or benchmarks to rigorously assess model or agent performance against existing baselines
- Hands-on experience building applied AI systems, including one or more of: agent-based/agentic systems, experimentation frameworks, or applying LLM-based/foundation model architectures to time-series forecasting problems
- Proficiency in Python and modern ML/AI frameworks and platforms (e.g. PyTorch, HuggingFace)
- Strong communication skills, with the ability to explain AI system behavior and tradeoffs to technical and business stakeholders, and to collaborate closely with optimization/OR scientists on what constitutes a meaningful model improvement
Preferred qualifications:
- Bachelor's degree in Computer Science, AI, Data Science, Engineering, or related field, or equivalent related work or military experience
- Master's degree or PhD in Computer Science, AI, Machine Learning, Statistics, or related field
- 2+ years of experience building agentic systems for production use cases and/or R&D applications
- Experience designing operational safeguards (e.g., automated checks against regressions, runaway compute, or unvalidated models reaching production) for agent-based systems
- Practical experience applying time-series or tabular foundation models (e.g., Chronos or similar) to forecasting problems such as ETA prediction or demand forecasting
- Practical experience with foundation model fine-tuning or post-training techniques
- Practical experience applying reinforcement learning (e.g., RLHF, or RL for agent behavior and decision-making)
- Experience building retrieval-augmented generation (RAG) systems is a plus
- Experience applying agentic or applied AI techniques to logistics, transportation, or operations research domains
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About the Applied AI Scientist job:
Pay, Benefits and more:
- Competitive compensation package
- Full health insurance benefits available on day one
- Life and disability insurance
- Earn up to 15 days of PTO over your first year
- 9 paid company holidays
- 401(k) option with company match
- Education assistance
- Opportunity to participate in a company incentive plan
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What you’ll do on a typical day:
- Design and build agentic experimentation layer over optimization models developed by the team's OR/data scientists, including proposing variants, running evaluations, and surfacing promising results
- Build evaluation harnesses that rigorously and automatically benchmark model and agent performance against existing baselines before promotion to production
- Implement operational safeguards for autonomous experimentation systems, such as automated regression checks, compute/cost limits, and human-in-the-loop gates before production promotion
- Evaluate and integrate modern LLM-based and foundation model architectures (e.g., Chronos-style time-series models) for ETA prediction and demand forecasting for pickup prediction
- Partner closely with the team's optimization/OR scientists to understand model internals, solver behavior, and what constitutes a meaningful improvement for P&D use cases
- Partner with machine learning engineers on the underlying infrastructure needed to run automated experimentation and evaluation at scale
- Communicate technical approaches and tradeoffs to both technical and business audiences
- Stay current on advances in agentic systems, time-series foundation models, and applied GenAI to guide adoption at XPO
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Annual Salary Range: $100,000 to $120,000 Actual compensation may vary due to factors such as experience and skill set. This is an incentive-based position, which may include bonuses, incentive or commission plans.
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About XPO
XPO is a top ten global provider of transportation services, with a highly integrated network of people, technology and physical assets. At XPO, we look for employees who like a challenge and can communicate effectively in all situations. We want to leverage your skills and years of experience to drive positive results while ensuring a bright future for yourself and XPO. If you’re looking for a growth opportunity, join us at XPO.Â
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We are proud to be an Equal Opportunity employer. Qualified applicants will receive consideration for employment without regard to race, sex, disability, veteran or other protected status.
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All applicants who receive a conditional offer of employment may be required to take and pass a pre-employment drug test.Â
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The above statements are not an exhaustive list of all required responsibilities, duties and skills for this job classification.Â
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Review XPO's candidate privacy statement here.
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