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Job Details

Susquehanna logo
Proprietary Trading

Faculty Fellow

at Susquehanna

ExperiencedNo visa sponsorship

Posted 5 days ago

0 views

Susquehanna is offering a fully funded 12–18 month faculty fellowship to conduct advanced machine learning research using large-scale financial datasets. The role involves developing novel models, collaborating with researchers and engineers, and contributing to high-performance ML infrastructure in a real-world quantitative trading environment.

Compensation
Not specified

Currency: Not specified

City
Not specified
Country
Not specified

Full Job Description

JOB DESCRIPTION
Overview

At Susquehanna, we approach quantitative finance with a deep commitment to scientific rigor and innovation. Our research leverages vast and diverse datasets, applying cutting-edge machine learning at scale to uncover actionable insights—driving data-informed decisions from predictive modeling to strategic execution.

We are launching a 12–18 month fully funded faculty fellowship. This is a unique opportunity to pursue advanced machine learning research in a fast-paced, real-world environment—collaborating with teams at the frontier of quantitative trading.

What You'll Do

Conduct applied machine learning research using large-scale, real-world financial datasets

Develop novel modeling techniques and adapt state-of-the-art algorithms to unique challenges in quantitative finance

Collaborate with researchers and engineers to translate theoretical insights into production-scale systems.

Contribute to the design of robust, high-performance ML infrastructure

Explore research directions aligned with your interests, with flexibility in scope and duration

Evaluate ideas in an industrial setting, generating insights that may inform future academic or applied work

Help grow our research community by fostering collaboration and leveraging your network within the ML and academic ecosystems


What we're looking for

Exceptional faculty (tenured or tenure-track) with expertise in machine learning, deep learning, LLM, statistics, computer science, physics, applied mathematics, or related fields

Exceptional newly minted PhDs or postdocs developing a research agenda in machine learning, deep learning, LLM, statistics, computer science, physics, applied mathematics, or related fields

A strong theoretical foundation in ML and a passion for solving practical, open-ended problems

Strong programming skills (Python preferred); experience with ML frameworks like PyTorch, TensorFlow or Jax

Intellectual curiosity, adaptability, and a collaborative mindset

Note: This fellowship is ideal for faculty seeking to broaden their applied research portfolio, explore new domains, or engage in sabbatical collaborations. The faculty fellowship is also appropriate for exceptional newly minted PhD and postdocs who want to develop a research agenda (involving, but not limited to, modeling, inference, and prediction tasks in complex systems), as they prepare to transition into a faculty position. While research outputs cannot be published due to the proprietary nature of our work, we aim for each faculty fellow to publish technical research papers collaboratively with their research hosts, to showcase some of the machine learning and AI innovations that they developed while in residence at Susquehanna.

About Susquehanna

Susquehanna is a global quantitative trading firm powered by scientific rigor, curiosity, and innovation. Our culture is intellectually driven and highly collaborative, bringing together researchers, engineers, and traders to design and deploy impactful strategies in our systematic trading environment. To meet the unique challenges of global markets, Susquehanna applies machine learning and advanced quantitative research to vast datasets in order to uncover actionable insights and build effective strategies. By uniting deep market expertise with cutting-edge technology, we excel in solving complex problems and pushing boundaries together.

If you're a recruiting agency and want to partner with us, please reach out to recruiting@sig.com. Any resume or referral submitted in the absence of a signed agreement will not be eligible for an agency fee.

#LI-Onsite

Job Details

Susquehanna logo
Proprietary Trading

5 days ago

0 views

Faculty Fellow

at Susquehanna

ExperiencedNo visa sponsorship

Not specified

Currency not set

City: Not specified

Country: Not specified

Susquehanna is offering a fully funded 12–18 month faculty fellowship to conduct advanced machine learning research using large-scale financial datasets. The role involves developing novel models, collaborating with researchers and engineers, and contributing to high-performance ML infrastructure in a real-world quantitative trading environment.

Full Job Description

JOB DESCRIPTION
Overview

At Susquehanna, we approach quantitative finance with a deep commitment to scientific rigor and innovation. Our research leverages vast and diverse datasets, applying cutting-edge machine learning at scale to uncover actionable insights—driving data-informed decisions from predictive modeling to strategic execution.

We are launching a 12–18 month fully funded faculty fellowship. This is a unique opportunity to pursue advanced machine learning research in a fast-paced, real-world environment—collaborating with teams at the frontier of quantitative trading.

What You'll Do

Conduct applied machine learning research using large-scale, real-world financial datasets

Develop novel modeling techniques and adapt state-of-the-art algorithms to unique challenges in quantitative finance

Collaborate with researchers and engineers to translate theoretical insights into production-scale systems.

Contribute to the design of robust, high-performance ML infrastructure

Explore research directions aligned with your interests, with flexibility in scope and duration

Evaluate ideas in an industrial setting, generating insights that may inform future academic or applied work

Help grow our research community by fostering collaboration and leveraging your network within the ML and academic ecosystems


What we're looking for

Exceptional faculty (tenured or tenure-track) with expertise in machine learning, deep learning, LLM, statistics, computer science, physics, applied mathematics, or related fields

Exceptional newly minted PhDs or postdocs developing a research agenda in machine learning, deep learning, LLM, statistics, computer science, physics, applied mathematics, or related fields

A strong theoretical foundation in ML and a passion for solving practical, open-ended problems

Strong programming skills (Python preferred); experience with ML frameworks like PyTorch, TensorFlow or Jax

Intellectual curiosity, adaptability, and a collaborative mindset

Note: This fellowship is ideal for faculty seeking to broaden their applied research portfolio, explore new domains, or engage in sabbatical collaborations. The faculty fellowship is also appropriate for exceptional newly minted PhD and postdocs who want to develop a research agenda (involving, but not limited to, modeling, inference, and prediction tasks in complex systems), as they prepare to transition into a faculty position. While research outputs cannot be published due to the proprietary nature of our work, we aim for each faculty fellow to publish technical research papers collaboratively with their research hosts, to showcase some of the machine learning and AI innovations that they developed while in residence at Susquehanna.

About Susquehanna

Susquehanna is a global quantitative trading firm powered by scientific rigor, curiosity, and innovation. Our culture is intellectually driven and highly collaborative, bringing together researchers, engineers, and traders to design and deploy impactful strategies in our systematic trading environment. To meet the unique challenges of global markets, Susquehanna applies machine learning and advanced quantitative research to vast datasets in order to uncover actionable insights and build effective strategies. By uniting deep market expertise with cutting-edge technology, we excel in solving complex problems and pushing boundaries together.

If you're a recruiting agency and want to partner with us, please reach out to recruiting@sig.com. Any resume or referral submitted in the absence of a signed agreement will not be eligible for an agency fee.

#LI-Onsite