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Posted via Amazon Jobs

Principal Research Scientist, Amazon Connect

Posted Aug 12, 2026

Role at a glance

Salary
$208.3K – $281.8K/yr
Location
New York, New York, United States
Work arrangement
On-site
Employment
Full-time
Experience
10+ years of tech industry or equivalent experience
Education
PhD in a quantitative discipline

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Role Summary

AI-generated

The Eliza team within Amazon Connect is seeking a Principal Research Scientist to define operations research for contact-center demand forecasting, workforce scheduling, and network optimization. The role develops scientific methods and translates them into production systems serving large-scale customer interactions while providing senior technical leadership across science and engineering.

What You'll Do

  • Set the multi-year research direction for contact-center demand prediction, workforce scheduling, and network optimization.
  • Design and deliver algorithms in combinatorial optimization, queueing theory, stochastic modeling, and time-series forecasting.
  • Own scientific solutions from problem formulation and prototyping through production deployment.
  • Design experiments and evaluation methods to validate hypotheses and quantify business impact.
  • Partner with engineering, product, and operations teams on data and logging requirements and scientific capabilities.
  • Mentor scientists and represent the team's science through publications, patents, and top-tier venues.

Generated from the employer's posting. Verify important details before applying.

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Qualifications

Required

  • 10+ years of tech industry or equivalent experience
  • PhD in a quantitative discipline such as statistics, mathematics, economics, computer science, or any related quantitative field
  • Experience working effectively with science, data processing, and software engineering teams

Preferred

  • PhD in operations research, applied mathematics, theoretical computer science, or equivalent, or experience in at least one of the related science disciplines (optimization - LP, MIP, statistics, machine learning, process control,...
  • Experience in leading large-scale, technical or engineering programs with a proven record of thought leadership, business case development, realizing customer benefits, and successful program completion
  • Experience scripting in modern programming languages, or experience with training and deploying machine learning systems to solve large-scale optimizations
  • Patents or publications at top-tier peer-reviewed conferences or journals.

Original job description

Content provided by the employer

Do you want to define the scientific direction for how a global contact-center network forecasts demand, schedules its workforce, and optimizes operations in real time? The Eliza team within Amazon Connect (FCS) is looking for a Principal Research Scientist with a deep operations research specialization to set the research agenda in operations science — combinatorial optimization, queueing theory, stochastic modeling, and forecasting — and to translate that research into production systems that serve millions of customer interactions.

As a Principal Research Scientist, you will be the senior technical voice for operations research across the org. You will identify the highest-leverage scientific problems, architect novel solutions, and drive them from research through production deployment. You will not sit apart from the work — you will remain deeply hands-on with data, models, and systems while raising the scientific bar for scientists and engineers around you. This is an individual-contributor Principal role: your influence comes from technical depth, invention, and the ability to move business and engineering roadmaps through scientific rigor.

You will operate at the intersection of demand forecasting, workforce scheduling, and network optimization — applying combinatorial optimization to large-scale scheduling and resource-allocation problems and queueing theory to model contact-center dynamics under uncertainty, non-stationarity, and competing operational constraints at Internet scale — turning that reasoning into systems that continuously sense, predict, and optimize.



Key job responsibilities
- Set the multi-year research direction for operations research across contact-center demand prediction, workforce scheduling, and network optimization.
- Design and deliver novel algorithms in combinatorial optimization (large-scale scheduling, resource allocation, integer/constraint programming) and queueing theory (contact-center modeling, staffing under stochastic arrivals), alongside stochastic modeling and time-series forecasting, that advance the state of the art while solving real operational problems.
- Own end-to-end scientific solutions — from problem formulation and prototyping to production deployment — ensuring robustness, explainability, and seamless integration with existing systems.
- Design rigorous experiments and evaluation methodology to validate hypotheses and quantify business impact; establish scientific-excellence mechanisms (metrics, benchmarks, peer review) that the broader science team adopts.
- Partner with engineering, product, and operations teams to define data and logging requirements, get them prioritized on roadmaps, and translate scientific capabilities into measurable business outcomes.
- Influence senior leadership through written papers and deep-dives, framing complex algorithmic trade-offs in clear business terms.
- Mentor and raise the bar for applied and research scientists across the org while maintaining significant hands-on technical contribution.
- Represent the team's science externally where appropriate (publications, patents, top-tier venues such as INFORMS, NeurIPS, ICML).

A day in the life
Your day blends hands-on science with technical leadership. You might spend the morning deep in data and models — prototyping a new combinatorial-optimization formulation for workforce scheduling or a queueing model for staffing under stochastic arrivals against production infrastructure — and the afternoon guiding fellow scientists through a hard optimization or stochastic-modeling problem, reviewing an experiment design, or aligning engineering partners on the data architecture needed to unlock the next capability. You'll drive technical discussions with the team and key stakeholders, and periodically write and present papers that shape the business and engineering roadmap.

Basic Qualifications

- 10+ years of tech industry or equivalent experience
- PhD in a quantitative discipline such as statistics, mathematics, economics, computer science, or any related quantitative field
- Experience working effectively with science, data processing, and software engineering teams

Preferred Qualifications

- PhD in operations research, applied mathematics, theoretical computer science, or equivalent, or experience in at least one of the related science disciplines (optimization - LP, MIP, statistics, machine learning, process control, combinatorial optimization)
- Experience in leading large-scale, technical or engineering programs with a proven record of thought leadership, business case development, realizing customer benefits, and successful program completion
- Experience scripting in modern programming languages, or experience with training and deploying machine learning systems to solve large-scale optimizations
- Patents or publications at top-tier peer-reviewed conferences or journals.

Amazon is an equal opportunity employer and does not discriminate on the basis of protected veteran status, disability, or other legally protected status.

Our inclusive culture empowers Amazonians to deliver the best results for our customers. If you have a disability and need a workplace accommodation or adjustment during the application and hiring process, including support for the interview or onboarding process, please visit https://amazon.jobs/content/en/how-we-hire/accommodations for more information. If the country/region you’re applying in isn’t listed, please contact your Recruiting Partner.

The base salary range for this position is listed below. Your Amazon package will include sign-on payments and restricted stock units (RSUs). Final compensation will be determined based on factors including experience, qualifications, and location. Amazon also offers comprehensive benefits including health insurance (medical, dental, vision, prescription, Basic Life & AD&D insurance and option for Supplemental life plans, EAP, Mental Health Support, Medical Advice Line, Flexible Spending Accounts, Adoption and Surrogacy Reimbursement coverage), 401(k) matching, paid time off, and parental leave. Learn more about our benefits at https://amazon.jobs/en/benefits.



USA, NY, New York - 208,300.00 - 281,800.00 USD annually
amazon

About the company

amazon

Large Enterprise

Amazon is a global leader in e-commerce and cloud computing, founded in 1994 by Jeff Bezos. Initially starting as an online bookstore, it has since expanded its offerings to include a vast range of products and services, including electronics, fashion, and digital content. With Amazon Web Services (AWS), the company also provides powerful cloud solutions to businesses around the world. Known for its innovation, customer-centric approach, and commitment to operational efficiency, Amazon continues to shape the future of retail and technology, consistently seeking new ways to enhance customer experiences.