Machine Learning Engineer
Quick Summary
About Interval Interval helps enterprises turn messy, underused data into governed, high-confidence intelligence—without handing control to a black box.
Interval helps enterprises turn messy, underused data into governed, high-confidence intelligence—without handing control to a black box. We bring compute to your data with a private data lakehouse, verifiable audit trails, and U-AI, our contextual AI framework for secure AI workflows.
We’re looking for a Machine Learning Engineer who’s excited about solving hard technical problems at the intersection of AI, privacy, and distributed systems—and who wants to help reimagine how enterprise data is activated, governed, and monetized.
Responsibilities
~1 min read- →
Develop and deploy models that work with distributed, privacy-preserving enterprise data (structured, unstructured, and time series)
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Work closely with our AI team on Val, our internal contextual intelligence framework, including NLP, embedding systems, and semantic search
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Collaborate across product and engineering to build robust ML pipelines for data classification, anomaly detection, semantic inference, and explainability
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Research and prototype novel applications of machine learning in private and federated contexts, with a focus on enterprise data security
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Integrate ML systems into a secure infrastructure governed by on-chain access control and data provenance
- →Contribute to internal tools and libraries that help automate model training, evaluation, versioning, and monitoring
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3–6 years of experience in machine learning, data science, or applied AI roles
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Strong programming skills in Python, with experience in ML frameworks like PyTorch,TensorFlow, Hugging Face, or similar
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Demonstrated experience working with real-world datasets—especially enterprise or high-integrity data (e.g., financial, medical, telemetry, etc.)
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Comfort with data privacy techniques such as differential privacy, federated learning, or homomorphic encryption (or strong interest in learning them)
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Interest or experience in working with LLMs, embeddings, or knowledge graph-based approaches
- Familiarity with the basics of smart contracts or blockchain (Solidity, EVM, etc.) is a plus—but not required
Nice to Have
~1 min read-
Experience building ML systems in production environments (MLOps, CI/CD for models, data versioning)
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Familiarity with data governance, compliance, or regulatory environments (e.g., HIPAA, GDPR)
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Background in knowledge representation, multi-modal learning, or semantic reasoning
- Prior experience in high-signal industries like real estate, energy, finance, or logistics
What We Offer
~1 min readLocation & Eligibility
Listing Details
- Posted
- January 19, 2026
- First seen
- June 4, 2026
- Last seen
- June 5, 2026
Posting Health
- Days active
- 0
- Repost count
- 0
- Trust Level
- 30%
- Scored at
- June 4, 2026
Signal breakdown
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