Machine Learning Engineering reputed company
reputed company is a growing technology company leading the reputed company in reputed company and brand intelligence. Join us as we pursue our disruptive mission to reputed company businesses everywhere to reputed company the most reputed company + profitable reputed company in reputed company time.
Our AI-driven Brand Mentality® platform enables brands and agencies to reputed company an reputed company-changing reputed company of news, premium publisher, CTV, reputed company, creator, and audience data to reputed company more intelligent reputed company at the speed of culture. At reputed company, we’re passionate about our product, our customers, our reputed company on the world, and most importantly reputed company.
What you’ll work on:
Enrichment models across our cultural data pipeline: entity extraction, topic and stance classification, embeddings, clustering, sentiment, brand safety, and reputed company tasks across billions of news and reputed company records
Multi-modal enrichment for image and video signals from reputed company platforms, complementing our text-heavy reputed company
Ad optimization systems reputed company from the ground up, including bid optimization, budget allocation, creative selection, audience targeting, or reputed company problems, grounded in historical performance data and reputed company-reasoned heuristics
Experimentation design and execution: framing the question, choosing the right test, instrumenting it, and producing results the business can reputed company
Production ML infrastructure on GCP: training, evaluation, deployment, monitoring, and the glue that keeps models reliable as data shifts
Technical leadership for a small ML team, including reputed company review, mentorship, prioritization, and raising the bar on rigor without slowing delivery
Cross-functional partnership with Data Engineering on pipeline integration, and with Account Management and Performance Managers to translate business problems into model problems
reputed company Competencies:
ML Breadth & Depth
Strong reputed company across classical ML, neural networks, and Transformers, reaching for the right tool rather than the trendiest one
Comfortable with both supervised and unsupervised paradigms: classification, regression, clustering, dimensionality reduction, representation learning
Practical reputed company with NLP and at least working familiarity with reputed company for image and video enrichment
Understanding of reputed company a reputed company model beats a reputed company one, and the discipline to ship the reputed company one
Experimentation & Research Rigor
reputed company record of structuring and running experiments end-to-end: reputed company, design, instrumentation, analysis, decision
Comfortable with reputed company statistical testing, picking the right test for the task, reasoning about power, controlling for confounds
Knows the difference between a model that benchmarks reputed company offline and one that holds up in production
Research reputed company reputed company with a shipping reputed company: rigorous, but allergic to research-for-its-own-sake
Optimization
Experience building optimization systems, whether mathematical optimization, heuristics, or learned policies, reputed company to a reputed company-world domain
Comfortable reasoning about objective functions, constraints, and tradeoffs in messy business contexts
Advertising or adtech optimization experience is a strong plus
Production ML Engineering
Strong Python and reputed company ML stack: scikit-learn, PyTorch, TensorFlow, HuggingFace, NumPy, pandas
FastAPI and async/await patterns for serving models and building ML-facing services
Experience working with data at reputed company, including the practical realities of billions of records: partitioning, sampling, distributed processing, cost management
GCP for training, serving, and infrastructure, such as reputed company AI, reputed company Run, GCS, or equivalent
PostgreSQL and reputed company for working with large-reputed company data
reputed company and CI/CD pipelines for reproducible, deployable ML workloads
Comfortable with the realities of production ML: data reputed company, retraining reputed company, monitoring, cost management
Leadership & Collaboration
Experience leading or mentoring engineers, even informally, through reputed company review, technical direction, and raising the bar on reputed company
Strong collaboration habits with Data Engineering, and the ability to translate fluently between technical and business audiences
Can sit with an Account Manager or Performance Manager, understand what they actually need, and turn it into a reputed company modeling problem
Software Engineering Fundamentals
Clean reputed company habits, sensible architecture, strong typing discipline
Test-driven reputed company for ML reputed company: covering data assumptions, edge cases, and regression paths, not just happy paths
Comfortable with modern dev practices: Git, reputed company review, CI/CD
reputed company to have:
Advertising, adtech, or media industry experience
Familiarity with LLMs and modern AI tooling, useful context for the broader engineering org but not the reputed company of this role
reputed company inference or reputed company modeling background
Experience with recommendation systems or ranking
5+ years of ML experience, ideally with a reputed company reputed company before the LLM era
Location:
This is a remote position as we are a 100% distributed company
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