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À propos
RAD Intel is building the future of AI-powered growth. We're a fast-scaling company backed by 10,000+ investors and $50M+ raised, with a mission to reinvent how businesses grow through our AIBO (Artificial Intelligence Buy-Out) strategy. RAD acquires and partners with agencies, clinics, and real-economy businesses, then infuses them with our proprietary AI marketing and operations platform to unlock compounding value. With a team of entrepreneurs, operators, and technologists, we're driving one of the most ambitious AI strategies in the market—democratizing access to world-class AI tools while creating investor-grade outcomes at scale.
About the RoleWe're seeking a Machine Learning Engineer who thrives at the intersection of software development and applied ML. In this role, you'll update and extend AI-powered features across multiple pipelines, with a focus on building conversational agents and multi-agent systems. Your experience in software development will be applied in code optimization and application development.
Key Responsibilities
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Collaborate with cross-functional teams on conversational AI and other chat bot related tools and LLM integrations.
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Work closely with the NLP team to release our own in-house LLMs.
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Support in building agent-based automation systems that power our chat bot systems and complete integration with our in-house LLMs.
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Build, test, optimize and deploy software components across our ML pipelines while also updating existing AI features with state-of-the-art models.
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Maintain robust infrastructure for data ingestion and fine tuning / re-training models.
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Stay current on advancements in generative content and advise / inform the team on updating our models / feature space.
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Must Have:
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1–2 years of experience in software engineering.
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At least 3 years of experience in ML engineering.
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Experience in using python based application frameworks such as Flask and FastAPI.
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Familiarity with Model Context Protocol (MCP) schema design, prompt engineering and orchestration frameworks (e.g., LangChain, LangGraph, etc.)
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Familiarity with agent frameworks and distributed task coordination.
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Proficiency in Python and experience with ML tools (e.g., scikit-learn, Hugging Face, etc.).
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Understanding of ML operations and experiment tracking tools.
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Nice-to-have:
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Masters' or PhD in a relevant field.
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Curiosity about LLMs and their focus in real-world applications such as social media based marketing campaigns.
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Experience with data streaming and real-time analysis is a plus.
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Collaborative, high-energy culture where your voice is heard
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Competitive compensation
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Comprehensive benefits (health, dental, vision, life insurance)
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Stock options — be an owner in our fast-growing startup
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Remote-flexible environment with a strong async culture
Compétences linguistiques
- English
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