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Quant Researcher

Join Frec as a Quant Researcher to develop innovative financial products and empower individuals in managing their wealth.

Location
San Francisco
Compensation
Not disclosed
Level
mid
Type
full time · Hybrid

Posted by employer 4 months ago

First seen on Joblaze 1 week ago

Last verified on the company career page 1 day ago

Apply at Frec → Save job Scanned from frec.com

Requirements

Education
Master's degree
Visa
Sponsorship available

Not disclosed in this posting: compensation, years of experience.

Benefits

401k Unlimited PTO Equity/Stock Options Remote Work Health Insurance Relocation Assistance

Joblaze summary

In the role of Quant Researcher at Frec, the individual will focus on developing and refining quantitative models that drive investment strategies, including portfolio optimization and performance analysis. Proficiency in Python and a strong foundation in finance and statistics are essential, along with an advanced degree in a quantitative discipline. This position is well-suited for someone with a strong analytical mindset and a collaborative spirit, eager to contribute to a dynamic team dedicated to reshaping financial management.

Joblaze insights

Quick facts

Is the Quant Researcher role remote?
It's hybrid — Frec expects some on-site time in San Francisco.
Where is the role based?
Frec is hiring for this position in San Francisco.
What's the tech stack?
Joblaze extracted these technologies from the posting: AWS, GraphQL, Node, PostgreSQL, Python, Redis.
Does Frec sponsor work visas for this role?
Yes — the posting indicates visa sponsorship is available for the right candidate.
What seniority level is this role?
Frec targets mid-level candidates for this position.
Is this full-time or contract?
Full-time for this Quant Researcher role at Frec.

From the original posting

We created Frec to expand the possibilities for everyone and their money. We’re a tight team of builders, creators, and designers who want to be smarter with our money for our futures and our families. As a quantitative developer at Frec, you’ll create products that enable us to level the financial playing field and empower people to manage their own money. Some values we identify with are accountability, humility, compassion, and teamwork. If this resonates with you, join us at this pivotal time to help shape our structures, systems, and Frec’s future.

Frec highly values product ideas and feedback from all employees, in a true bottoms-up fashion. This means as a quantitative developer, you will work with a growing team comprised of quantitative researchers, software engineers, product managers, designers, and brokerage operations professionals to ideate, prioritize, prototype, develop, test, and iterate on software that will educate and equip people with newer and smarter ways to build wealth. We’re looking for engineers who have an unrelenting sense of urgency and capability to move fast, have a strong sense of ownership, ability to deal with ambiguity and are enthusiastic about tackling new challenges to help us build a world-class financial platform.

What you will do:

  • Quantitative Research & Strategy Development: You will live at the intersection of mathematics, finance, and statistics. You will own the design, validation, and refinement of the core methodologies driving our long only and long-short direct indexing engines, including tracking error minimization, tax-loss harvesting, and risk-aware portfolio construction. You take pride in translating ambiguous investment questions into rigorous, well-tested models with clear empirical grounding.

  • Portfolio Optimization & Performance Research: You will help shape our portfolio construction, rebalancing, and performance attribution methodologies. You care deeply about the trade-offs between tracking error, tax efficiency, and transaction costs, continuously researching improvements to our optimization formulations and ensuring that every methodological decision is robust under varied market regimes and supported by quantitative evidence.

  • Financial Data Analysis & Modeling: You'll tackle complex challenges around analyzing large financial datasets, including market data, execution data, tax lots, corporate actions, and commercial risk models. This includes designing backtesting frameworks, conducting factor and attribution analyses, and ensuring our models behave correctly under dynamic market conditions before they reach production.

  • Collaboration: You'll partner closely with quantitative developers, backend engineers, as well as product, design, and operations teams, to ensure that research outputs translate into systematic trading systems that are mathematically accurate, technically sound, operationally robust, and seamlessly integrated into high-quality product experiences.

What we offer:

  • Competitive salary and equity grants

  • Fully paid health, vision and dental insurances

  • 401k

  • Monthly allowance to help with maintaining a healthy body and mind (fitness & mental health components)

  • Flexible (Unlimited) paid time off

  • Visa sponsorship & immigration support

  • Daily in-office lunch and dinner

  • Office in San Francisco/New York for in-person collaboration (close to public transit options)

Requirements:

  • Advanced degree in a quantitative field such as Engineering, Computer Science, Applied Mathematics, Physics.

  • Strong analytical mindset with intellectual curiosity in investment management

  • Investment/finance knowledge, including portfolio theory, factor models, and tax-aware investing (experience with Cash Equities is a plus)

  • Strong problem solving skills and attention to details, and ability to explain the ideas that underlie them

  • Strong programming background in an object oriented language.

  • A self-starter who embraces ownership and accountability, should have the ability to work independently as well as thrive in a team environment

Tech Stack:

  • Python as the primary research environment, with TypeScript/Node powering production systems

  • PostgreSQL as our data store, with Redis for caching and distributed coordination

  • Commercial risk models (e.g. Barra) and convex optimization tooling for portfolio construction

  • dbt and notebook-based analytics over a dedicated analytics replica

  • Deployed on AWS using containerized infrastructure

  • GraphQL as the mode of building and exposing APIs

Contact:

If all of the above resonates with you, reach out to us at careers@frec.com and join us for the ride!

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