Demandbase, Inc.
Machine Learning Engineer II
Part remote, part office, you need to live within commuting distance of a named location.
Hybrid · Hyderabad
Employer listed it 5 weeks ago · Added 4 days ago
Been open since 5 weeks ago, still checked daily, but it has been live a while.
Salary
Not stated
Location
Hybrid · Hyderabad
Timezone
Not stated
Contract
Full-time
Experience
Senior
Category
Data
This employer didn't state pay. Jobs like this usually pay around $145k–$210k a year, a typical range taken from 255 senior-level data roles on Nomaders that do state pay. It's a guide, not an offer.
Remote flexibility
Hybrid
This role is only partly remote, the employer expects time in the office around Hyderabad, Hybrid, so you need to live within commuting distance.
What the employer says
- Source listing states candidate location: "Hyderabad, Hybrid"
- Listing mentions "Hybrid"
What Nomaders makes of it
- Not suitable if you plan to move between countries
The quotes above are the employer's own words; the reading is ours. Always check the original listing and employment terms before working from another country.
About the role
Introduction to Demandbase:
Demandbase is the only pipeline AI platform that empowers GTM teams to automate growth at scale. With a unified view of data, insights, actions, and outcomes, B2B enterprises can seamlessly align and execute their account-based GTM strategies with confidence. Thousands of businesses trust Demandbase to maximize revenue, minimize waste, and consolidate their data and tech stacks – all in one platform.
As a company, we’re as committed to growing careers as we are to building world-class technology. We invest heavily in people, our culture, and the community around us. We have also continuously been recognized as One of The Best Places To Work in the San Francisco Bay Area by Fortune, and One of The 60 Best Companies To Sell For by Selling Power. Our offices are located in San Francisco, New York, Austin, Seattle, India, and the United Kingdom.
About the Role
We are looking for a Machine Learning Engineer II to join Demandbase and build intelligent data and AI/ML capabilities for our Company and Domains Data teams. This is a hands-on ML engineering role requiring a combination of strong ML fundamentals, GenAI/LLM experience, data engineering, and production software engineering. You will build ML solutions from experimentation through production and operate them reliably at enterprise scale.
You will work with large-scale first-party (1P) and third-party (3P) data, applying machine learning, NLP, Generative AI, and modern data-processing techniques to improve data intelligence, enrichment, web-signal extraction, and other ML-driven capabilities.
Key Responsibilities
Machine Learning & GenAI
Design, develop, and productionize Machine Learning and GenAI solutions for Company and Domain intelligence.
Build data pipelines and solve data problems using LLMs, transformers, and retrieval/RAG techniques where appropriate.
Develop ML solutions for problems such as classification, enrichment, information extraction, ranking, and data quality.
Experiment with models, prompts, embeddings, retrieval techniques, and ML approaches and evaluate them using well-defined quality metrics.
Collaborate with engineers, analysts, and product managers to translate requirements and data challenges into scalable, production-grade AI/ML solutions.
Build LLM applications using RAG, semantic retrieval, tool/function calling, and agentic workflows, integrating enterprise APIs and internal data sources.
Develop reusable AI services, APIs, and orchestration components.
AI Evaluation, Quality & ML Engineering
Build scalable data and feature pipelines to process and derive intelligence from large volumes of structured, semi-structured, and unstructured 1P/3P data.
Develop and maintain evaluation datasets, automated evaluation frameworks, and feedback loops for AI/ML features.
Define quality metrics and acceptance criteria to assess accuracy, relevance, grounding, latency, reliability, and cost.
Analyze failure patterns and production performance to continuously improve data, models, prompts, retrieval strategies, and agent behavior.
Apply guardrails, grounding, monitoring, and data-quality controls to reduce incorrect or unsupported outputs and improve system reliability.
Build solutions using Python, SQL, Spark/Pandas, vector search, traditional ML, and LLM-based approaches based on the problem’s requirements.
Production AI Engineering & Operational Excellence
Build clean, scalable, and maintainable production-grade AI/ML systems.
Requirements
- ·5–7 years of experience in Machine Learning Engineering, Applied ML, Data Science Engineering, or related areas.
- ·Strong programming experience in Python and good software engineering fundamentals. Experience with Scala is a plus.
- ·Hands-on experience building and productionizing machine learning models or ML-driven applications.
- ·Experience with modern Generative AI and LLM technologies, including LLM APIs or open-source models, embeddings, prompt engineering, and RAG.
- ·Strong understanding of core ML concepts including model training, feature engineering, model evaluation, experimentation, and inference.
Benefits
- ·Our Commitment to Diversity, Equity, and Inclusion at Demandbase
- ·We recognize that not all candidates will have every skill or qualification listed in this job description. If you feel you have the level of experience to be successful in the role, we encourage you to apply!
- ·Unsolicited Submissions
How to apply
- 1Check the flexibility label above, hybrid, matches where you plan to live and work.
- 2Tailor your CV to the role at Demandbase, Inc., mentioning your remote working experience.
- 3Apply directly on the employer's careers page using the button below. Nomaders never handles your application.
Found 5d ago. Last checked today. Always confirm the details on the original posting, salary and location can change after publication.
Listing sourced from Company boards.
Similar roles
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Free to apply, no account needed.
Typically $145k–$210k · You'll be taken to the employer's careers page.