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CSC Generation
Actively Hiring
unlocking the value of data trapped inside of retailers. $500M in revenues, profitable
  • B2C
  • Scale Stage
    Rapidly increasing operations

Senior Machine Learning Engineer, Causal & Decision Systems

Posted: 1 month ago
Hires remotely in
Remote Work Policy

Remote only

Company Location
Austin • 
Chicago • 
Seattle • 
Berkeley • 
Toronto • 
Gardena • 
Visa Sponsorship

Not Available

RelocationAllowed
Skills
Python
Machine Learning
SQL
Statistical Modeling
Automated Deployment
Experimentation
Monitoring
Constrained optimization
Active Learning
Causal inference
Contextual Bandits
Policy Learning
Sequential Decision-Making
Production ML Infrastructure
Counterfactual Evaluation
Causal and Heterogeneous Treatment-Effect Modeling
Uncertainty Estimation and Calibration
Off-Policy Evaluation
Champion/challenger Systems

About the job

CSC Generation is building closed-loop decision systems that use machine learning to operate consumer businesses more intelligently.

We are starting with pricing and expanding into areas such as inventory, purchasing, promotions, marketing, and assortment.

The Role

You will help build systems that:

**estimate causal response + quantify uncertainty → choose actions → generate useful information → observe outcomes → update policies → evaluate challengers → deploy within guardrails**

We want to answer questions such as:

  • What happens **because we change a price**, rather than simply what happens next?
  • How should uncertainty affect a decision?
  • When should the system exploit what it knows versus experiment to learn?
  • Can we estimate the value of a challenger policy before fully deploying it?
  • How do we optimize economic outcomes while respecting inventory, margin, vendor, customer, and operational constraints?

What You’ll Work On

Depending on your background, you may work across:

  • causal and heterogeneous treatment-effect modeling;
  • uncertainty estimation and calibration;
  • contextual bandits, active learning, or sequential decision-making;
  • policy learning and constrained optimization;
  • counterfactual and off-policy evaluation;
  • experimentation and champion/challenger systems;
  • production ML infrastructure, monitoring, and automated deployment.

We care about selecting the right method, not using a particular framework.

What Success Looks Like

Success is not a better offline metric.

The systems you build should produce measurable economic lift in controlled experiments, generalize across businesses, learn from their own interventions, and safely automate an increasing share of real commercial decisions.

Over time, the goal is simple:

**the system should become better at operating the business because it has operated the business.**

What We’re Looking For

We care more about exceptional technical ability and judgment than matching a checklist.

Strong candidates will have experience in several of:

  • machine learning and statistical modeling;
  • causal inference and experimentation;
  • recommendation, advertising, pricing, marketplace, credit, or other decision systems;
  • bandits, reinforcement learning, optimization, or active learning;
  • uncertainty estimation;
  • counterfactual evaluation;
  • production ML systems;
  • Python, SQL, and large behavioral datasets.

Why This Role Is Different

Most ML systems learn from a dataset.

Here, **the decisions made by the model influence the data the model sees next**.

That creates a continuous loop:

**Decision → intervention → outcome → learning → better decision**

The long-term opportunity is to build that capability once and apply it across a portfolio of businesses and increasingly broad commercial decisions.

About the company

CSC Generation company logo

CSC Generation

Actively Hiring
unlocking the value of data trapped inside of retailers. $500M in revenues, profitable51-200 Employees
  • B2C
  • Scale Stage
    Rapidly increasing operations

Employees joined from

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Founders

Justin Yoshimura
Founder
image
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