AI Engineer - LLM/ RAG/ Agentic Workflow (3 to 4yrs)

Reposted 24 Days Ago
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Hyderabad, Telangana, IND
In-Office
Mid level
Hardware • Software
The Role
The AI Developer with RPA will design and develop AI models and implement RPA solutions to improve operational efficiency and streamline workflows.
Summary Generated by Built In

Silicon Labs (NASDAQ: SLAB) is the leading innovator in low-power wireless connectivity, building embedded technology that connects devices and improves lives. Merging cutting-edge technology into the world’s most highly integrated SoCs, Silicon Labs provides device makers the solutions, support, and ecosystems needed to create advanced edge connectivity applications. Headquartered in Austin, Texas, Silicon Labs has operations in over 16 countries and is the trusted partner for innovative solutions in the smart home, industrial IoT, and smart cities markets. Learn more at www.silabs.com.

Role Overview:

We are seeking a AI Engineer to design, build, and scale production‑grade AI applications, including Retrieval‑Augmented Generation (RAG) systems and agentic, automated workflows. The ideal candidate will own solutions end‑to‑end—from architecture and model orchestration to deployment, monitoring, and continuous optimization in production environments.

This role requires deep expertise in LLMs, vector databases, orchestration frameworks, cloud infrastructure, and MLOps, with a strong engineering mindset to deliver reliable, secure, and scalable AI systems.

Key Responsibilities

AI Application Development

  • Design and implement RAG-based applications using state-of-the-art LLMs (OpenAI, Azure OpenAI, Anthropic, open-source models).
  • Build agentic systems capable of planning, tool usage, memory management, and autonomous task execution.
  • Develop multi-agent and workflow-driven automation for complex business processes.
  • Optimize prompt engineering, context management, and response quality.

Architecture & Scaling

  • Architect high-performance, scalable AI systems capable of handling enterprise workloads.
  • Design token-efficient, low-latency pipelines with strong cost controls.
  • Implement caching, re-ranking, chunking strategies, and hybrid retrieval (semantic + keyword).

Production Deployment & Operations

  • Deploy AI applications to production using cloud-native architectures.
  • Ensure high availability, observability, and fault tolerance.
  • Implement logging, tracing, evaluation metrics, guardrails, and feedback loops.
  • Handle model lifecycle management, versioning, and rollback strategies.

Data, Security & Governance

  • Implement secure ingestion pipelines across structured and unstructured data sources.
  • Ensure data privacy, compliance, and access controls.
  • Apply content moderation, safety filters, and hallucination mitigation techniques.

Collaboration & Leadership

  • Collaborate with product managers, backend engineers, and data teams.
  • Translate business requirements into robust AI solutions.
  • Mentor junior engineers and contribute to AI best practices.

Required Skills & Qualifications

Core AI & LLM Expertise

  • Strong experience with LLMs (All GPT models, Claude, LLaMA, Mistral, etc.).
  • Hands-on experience building RAG pipelines end‑to‑end.
  • Solid understanding of embeddings, vector similarity search, re-ranking, and context windows.
  • Experience with agentic frameworks (LangChain, LangGraph, LlamaIndex, AutoGen, CrewAI, Semantic Kernel).

Backend & Data Engineering

  • Proficiency in Python (required) and familiarity with FastAPI/Flask.
  • Experience with vector databases (Pinecone, Weaviate, FAISS, Milvus, Qdrant).
  • Knowledge of data preprocessing, document chunking, metadata indexing.

Machine Learning Expertise

  • Strong foundation in machine learning algorithms and statistics.
  • Experience with scikit-learn, XGBoost, LightGBM, PyTorch or TensorFlow.
  • Knowledge of model evaluation, cross-validation, metrics, and error analysis.
  • Experience deploying ML models into production environments.
  • Understanding of ML lifecycle management and model drift.

Cloud, DevOps & MLOps

  • Strong experience with AWS / Azure / GCP (Azure OpenAI preferred).
  • Containerization and orchestration using Docker and Kubernetes.
  • CI/CD pipelines for AI applications.
  • Monitoring tools for AI systems (prompt + model performance monitoring).

Production Readiness

  • Experience deploying AI solutions in real-world production environments.
  • Understanding of latency, throughput, cost optimization, and reliability.
  • Familiarity with evaluation frameworks and A/B testing for LLM outputs.

Preferred / Nice-to-Have Skills

  • Experience with fine-tuning or parameter-efficient tuning (LoRA, PEFT).
  • Knowledge of multi-modal models (text + image).
  • Experience with enterprise search, knowledge graphs, or document AI.
  • Background in distributed systems or high-scale backend services.
  • Exposure to compliance standards (SOC2, ISO, GDPR).

Benefits & Perks

Not only will you be joining a highly skilled and tight-knit team where every engineer makes a significant impact on the product; we also strive for good work/life balance and to make our environment welcoming and fun.

  • Equity Rewards (RSUs)

  • Employee Stock Purchase Plan (ESPP)

  • Insurance plans with Outpatient cover

  • National Pension Scheme (NPS)

  • Flexible work policy

  • Childcare support

Silicon Labs is an equal opportunity employer and values the diversity of our employees. Employment decisions are made on the basis of qualifications and job-related criteria without regard to race, religion, color, national origin, gender, sexual orientation, age, marital status, veteran status, or disability status, or any other characteristic protected by applicable law.

Skills Required

  • Bachelor's degree in computer science, Data Science, Engineering, or a related field; a master's degree is a plus
  • One year of proven experience in AI development
  • Minimum 2 years of hands-on experience with RPA tools - Automation Anywhere
  • Strong understanding of data structures, algorithms, and software development methodologies
  • Excellent problem-solving skills and the ability to work independently

Silicon Labs Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Silicon Labs and has not been reviewed or approved by Silicon Labs.

  • Affordable Benefits Benefits are portrayed as cost-effective, with references to low premiums and employer contributions that make coverage feel financially manageable. This affordability can increase the perceived value of total rewards even when base pay is viewed as merely competitive.
  • Healthcare Strength Healthcare offerings are described as comprehensive, spanning medical, dental, and vision coverage plus mental-health resources. Additional mechanisms like HSA/FSA options and preventive-care coverage reinforce the sense of strong health support.
  • Retirement Support Retirement support appears meaningful, with mentions of a 401(k) match and immediate vesting in some descriptions. Profit-sharing elements are also cited alongside retirement programs, strengthening the longer-term rewards picture.

Silicon Labs Insights

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The Company
HQ: Austin, TX
1,900 Employees
Year Founded: 1996

What We Do

We are a leader in secure, intelligent wireless technology for a more connected world. Our integrated hardware and software platform, intuitive development tools, unmatched ecosystem and robust support make us the ideal long-term partner in building advanced industrial, commercial, home and life applications. We make it easy for developers to solve complex wireless challenges throughout the product lifecycle and get to market quickly with innovative solutions that transform industries, grow economies and improve lives.

Why Work With Us

Our incredibly talented team is comprised of innovative risktakers pushing the bounds of what’s possible. We’re problem solvers first, addressing the industry’s biggest challenges to transform industries, grow economies and improve lives.

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