Encora10
AI/ML Engineer
Salary
Job description
We are seeking an AI/ML Engineer – Agents to help build the core intelligence layer of our AI-powered MarTech and AdTech platform. This role will focus on designing, developing, and deploying agentic AI systems, LLM-powered applications, and real-time inference pipelines that drive intelligent automation, personalization, and decision-making at scale.
This is a high-impact, hands-on engineering role for someone who thrives in fast-moving environments and wants to help shape next-generation AI products from the ground up.
Key Responsibilities
- Design and deploy agentic AI systems using frameworks such as LangGraph, AutoGen, CrewAI, or similar.
- Build and scale LLM/GenAI applications for MarTech and AdTech use cases, including content generation, campaign optimization, audience segmentation, personalization, and workflow automation.
- Fine-tune and optimize LLMs/SLMs for domain-specific tasks such as classification, extraction, recommendation, and intent understanding.
- Develop and manage training and inference pipelines for production-scale ML systems.
- Build scalable infrastructure for real-time and batch inference, experimentation, and deployment.
- Implement best practices for evaluation, A/B testing, model monitoring, and continuous improvement.
- Partner closely with product, data, and engineering teams to turn prototypes and research into production-ready AI services.
- Rapidly prototype and apply emerging research to practical product use cases.
Qualifications
- 3+ years of experience in AI/ML engineering, machine learning, or applied NLP roles.
- Master’s degree in Computer Science, Engineering, or a related field required; PhD preferred.
- Hands-on experience with agent-based AI frameworks such as LangGraph, AutoGen, CrewAI, or similar.
- Strong expertise in deep learning and natural language processing using frameworks such as PyTorch or TensorFlow.
- Experience fine-tuning and deploying foundation models such as LLaMA, Mistral, or similar.
- Strong experience with Hugging Face, LoRA, PEFT, and modern fine-tuning workflows.
- Experience with RAG pipelines, vector databases, semantic search, and embedding optimization tools such as FAISS, Pinecone, or PGVector.
- Experience deploying ML systems in cloud environments such as AWS, GCP, or Azure.
- Strong software engineering skills in Python, APIs, microservices, and containerized environments such as Docker and Kubernetes.
- Solid understanding of GPU optimization, distributed training, and inference performance tuning.
Preferred Qualifications
- Experience in MarTech, AdTech, personalization, targeting, or attribution systems.
- Experience with real-time decisioning or ad-serving systems.
- Contributions to open-source AI/LLM frameworks or published research.
- Prior experience in a startup or high-growth environment.
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