Member of Technical Staff - Research, Operations & Decision Science

Causal Labs

$120K — $180K *
Technical Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Deep expertise in operations research, decision science, or a related field (PhD or equivalent experience)
  • Strong understanding of optimization and decision-making under uncertainty, specifically stochastic methods
  • Experience in high-stakes operations where forecasts drive important decisions
  • Proven ability to evaluate the quality of optimization or decision models
  • Collaborative mindset to partner with ML researchers and address technical challenges

Responsibilities

  • Formulate objectives, constraints, and decision problems for reasoning models
  • Develop methods to evaluate decision quality under uncertainty, including counterfactual reasoning
  • Translate complex operational realities into clear optimization and decision problems
  • Ensure rigorous validation of optimization and decision-making models for practical use
  • Collaborate with reasoning, evaluation, and product teams to align research with real-world decisions

Benefits

  • Flexible work environment promoting exploration and innovation
  • Opportunity to work on high-impact projects with significant operational consequences
  • Access to cutting-edge research resources and collaborative teams
  • Emphasis on personal and professional growth within the organization
Full Job Description
We look for domain experts who are excited to tackle unsolved problems. A prediction matters most when it leads to better decisions - and evaluating decision quality in high-stakes operational environments is a challenge on its own. Your mission is to bring that discipline to our reasoning research: defining the objectives our models optimize toward and the methods by which we judge whether their decisions are actually good.

Responsibilities
  • Formulate the objectives, constraints, and decision problems that our reasoning models optimize toward
  • Develop methodology for evaluating decision quality under uncertainty, including counterfactual reasoning about outcomes
  • Translate the realities of complex operational environments into well-posed optimization and decision problems
  • Bring rigor to how optimization and decision-making models are validated for real-world use
  • Partner with reasoning, evaluation, and product teams to connect research to the decisions it ultimately informs


What we're looking for

We value a relentless approach to problem-solving, rapid execution, and the ability to quickly learn in unfamiliar domains.
  • Deep expertise in operations research, decision science, or a closely related field (typically a PhD or equivalent experience)
  • Strong grasp of optimization and decision-making under uncertainty, ideally including stochastic methods
  • Experience in high-stakes operational settings where forecasts drive consequential decisions
  • Particular strength in evaluating the quality of optimization or decision models, not just building them
  • Ability to collaborate closely with ML researchers and translate operational realities into technical problems

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