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Senior Machine Learning Engineer, Learner Modeling

Build and own learner models for education tech, powering mastery and progression features.

Design, build, and maintain machine learning models that drive learner progression insights for educators and students. Translate educational goals into model targets, manage data pipelines, and ensure model quality in production.

Why This Role?

Directly impact education outcomes with cutting-edge AI.

Key Responsibilities

  • Design and implement knowledge tracing and longitudinal learner models.
  • Define and build datasets for model training, focusing on relevant signals.
  • Translate educational concepts into model targets and evaluation metrics.
  • Develop robust scoring methods for sparse, noisy student behavior data.
  • Manage model lifecycle: training, scoring, testing, versioning, and monitoring.

Requirements

  • 6+ years of experience in applied machine learning or ML engineering.
  • Expertise in sequence modeling, probabilistic modeling, or temporal modeling.
  • Strong Python skills and experience in production engineering.
  • Solid understanding of model evaluation metrics and fairness.

Required Skills

machine-learningpythondata-engineeringmodel-deploymentsequence-modelingMachine LearningModel DevelopmentData Pipeline ManagementModel EvaluationPython ProgrammingProduction Engineering

Indonesia Context

Working Hours Overlap:
Flexible — work your own hours
See remote (USD) vs local pay →
View Original Description from Ashby Job Boards

Original description from Ashby Job Boards

At Instructure, we believe in the power of people to grow and succeed throughout their lives. Our goal is to amplify that power by creating intuitive products that simplify learning and personal development, facilitate meaningful relationships, and inspire people to go further in their education and careers. We do this by giving smart, creative, passionate people opportunities to create awesome. And that's where you come in: Our AI team is where a lot of that gets built: applying advanced AI to real problems in learning, and turning research into product capabilities that educators and students use every day. We're looking for a Senior Machine Learning Engineer to build and own the learner models behind our mastery and progression capabilities. You'll design the models, build the pipelines that train and score them, and own their quality once they're running in production. You'll partner with our learning scientists on what these models should measure, and with our infrastructure team on deployment and operations. WHAT YOU'LL DO - Design and build learner models, including knowledge tracing and longitudinal approaches, that power mastery and progression features surfaced to learners and educators - Shape the data foundation for learner modeling: define which signals matter, and build the datasets your models depend on - Translate mastery and progression definitions into model targets and evaluation criteria, working with learning scientists and product partners - Build estimation and scoring approaches that hold up on sparse, noisy, and evolving behavioral data - Own your models in production: training and scoring pipelines, testing, versioning, and monitoring quality once they're live - Explain model behavior, assumptions, and limitations clearly to product, engineering, and learning partners WHAT YOU'LL NEED - Six or more years in applied machine learning, machine learning engineering, or applied research, with ownership of models shipped into real products - Depth in at least one of: sequence modeling, latent-variable or probabilistic modeling, temporal modeling, Bayesian methods, or calibration of model outputs, applied to data that changes over time - Strong Python and production engineering skills: you write the pipelines that train and score your models, and you've shipped models that run on a schedule and serve predictions to real users - Strong evaluation instincts around calibration, uncertainty, stability, fairness, interpretability, and validation strategy IT WOULD BE A BONUS IF YOU HAD - Experience with recommender systems, user-state modeling, or personalization at scale - Experience with knowledge tracing, psychometrics, educational measurement, or adaptive learning systems - Experience combining structured knowledge representations, such as skills, standards, or concept graphs, with learner models - Experience designing experiments or observational validation strategies to test whether a model reflects reality Onsite Collaboration Requirement: This role requires working onsite on Tuesday and Wednesday, with Thursday strongly encouraged as part of our company’s in-person collaboration model. WHY JOIN US Join us and help shape the future of education by turning cutting-edge AI into reliable product capabilities. At Instructure, we're on a mission to help educators and students learn together, anytime, anywhere, and however works best. You'll join our research-driven team tackling education's biggest challenges with cutting-edge technology. We value diversity, creativity, and passion, and invest in our teams through mentorship, hack weeks, internal conferences, and a culture where innovation thrives. Here, you'll have the chance to build the next generation of LMS features that make a real impact on students and teachers, and do it in a collaborative, supportive environment that encourages experimentation and growth. Get in on all the awesome at Instructure! We offer competitive, meaningful benefits in every country where we operate. While they vary by location, here's a general idea of what you can expect: - Competitive compensation, plus all full-time employees participate in our ownership program - because everyone should have a stake in our success. - Flexible work culture. Our remote, hybrid and in-office collaboration spaces vary by role, team and location. - Generous time off, including local holidays and our annual “Dim the Lights” period in late December, when teams are encouraged to step back and recharge based on departmental needs. - Comprehensive wellness programs and mental health support - Learning and development resources, including professional development tools and tuition reimbursement, to support your growth - The technology and tools you need to do your best work - Motivosity employee recognition program - A culture rooted in inclusivity, support, and meaningful connection We believe in hiring great people and treating them right. The more diverse we are, the better our ideas and outcomes. Instructure is an Equal Opportunity Employer. We comply with applicable employment and anti-discrimination laws in every country where we operate. All employees must pass a background check as part of the hiring process. To help protect our teams and systems, we’ve implemented identity verification measures. Candidates may be asked to verify their legal name, current physical location, and provide a valid contact number and residential address, in accordance with local data privacy laws. Any attempt to misrepresent personal or professional information will result in disqualification.

Salary Context

Similar Engineering roles on LokerDollar pay around $195k/yr (range $13.4k–445k/yr, n=270 active listings).

Hiring at Instructure

Instructure has 25 other active roles on LokerDollar and has been hiring here since Jul 3, 2026 — across Engineering, Sales & Business Development, Data & Analytics.

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Salary
Job Type
full time
Location
Salt Lake City, USA · Remote
Category
Seniority
senior
PostedFreshNew & verified
Aug 24, 2026

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Frequently asked questions

Is Senior Machine Learning Engineer, Learner Modeling at Instructure a remote job?
This role is based in Remote. See the listing for remote/onsite details.
What is the salary for Senior Machine Learning Engineer, Learner Modeling at Instructure?
The listed pay range for this role is $1500k–2200k/mo.
What type of employment is Senior Machine Learning Engineer, Learner Modeling at Instructure?
This is a full time position.
How do I apply?
Click the "Apply" button on this page to go to the official application at Instructure.

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