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Siemens
Actively Hiring

Senior Machine Learning Engineer

Posted: 1 month ago
Job Location
Remote Work Policy

In office - WFH flexibility

Visa Sponsorship

Not Available

RelocationAllowed
Skills
Python
A/B Testing
Training
Telemetry
Batch Processing
Spark
Monitoring
Docker
AWS S3
Streaming
AWS RDS
Kubernetes
AWS IAM
Feature Engineering
GitLab CI
AWS DynamoDB
Flink
Scalable Services
AWS Lambda
LoRa
Cost Controls
data lineage
PyTorch
Pinecone
AWS ECS
AWS Step Functions
Data Curation
AWS CloudWatch
ETL/ELT
MLFlow
AWS SageMaker
Observability
AWS EKS
GitHub Actions
Model Deployment
OpenTelemetry
Kedro
Model Monitoring
OpenSearch
LangChain
Pgvector
Pattern Identification
QLoRA
Exploratory Data Analysis (EDA)
AWS Bedrock
Embeddings
Fine-Tuning
Langgraph
RAG Pipelines
Experiment Tracking
Retrieval
Sagemaker Pipelines
Structured Datasets
Unstructured Datasets
Model Registries
CI/CD for ML
Prompt Orchestration
Automated Retraining
Hugging Face Ecosystem
Safety/guardrails
Evaluation Harnesses
Semi-Structured Datasets
Evaluation Gates
Feature Importance Analysis
Responsible-AI Controls
Evaluation Metrics for NLP/LLMs
Data Quality Controls for ML
Data Governance Controls for ML
Hugging Face on AWS
Tools/agents
Latency Instrumentation
Cost Instrumentation
Quality Instrumentation
Continuous Improvement of Models
Continuous Improvement of Prompts
Prompt Lineage
Correlation Identification
Data Quality Issues Analysis
Deep Research on Domain-Specific Datasets
Predictive Signal Analysis

About the job

The Opportunity

We’re looking for a Senior Machine Learning Engineer to lead LLM‑powered application development—from prototype to production—on AWS. You’ll design robust ML/LLM services that power search, recommendations, copilots, and workflow automation in Brightly’s platform, partnering closely with product, data, and engineering teams. Responsibilities and skill expectations reflect current industry practice for senior ML/LLM engineers, including end‑to‑end model lifecycle ownership, production‑grade code, and MLOps.

What you’ll do

  • Build LLM applications: Design and implement RAG pipelines, prompt orchestration, tools/agents, safety/guardrails, and evaluation harnesses; instrument for latency, cost, and quality. (Guided by current LLM engineer role practices.)
  • Own the ML lifecycle: Data curation, feature engineering, training/fine‑tuning (LoRA/QLoRA), A/B testing, deployment, monitoring, and continuous improvement of models and prompts.
  • Productionize on AWS: Ship scalable services on EKS/ECS/Lambda; leverage SageMaker, Bedrock, EMR, MSK, Step Functions; apply observability (CloudWatch/OpenTelemetry) and cost controls. (Duties aligned to modern AWS ML roles.)
  • MLOps & governance: Establish CI/CD for models (MLflow/Kedro/SageMaker Pipelines), model/version registries, data and prompt lineage, evaluation gates, and responsible‑AI controls. (Aligned with contemporary MLOps templates.)
  • Partner across Brightly: Translate asset‑management use cases into ML/LLM solutions; collaborate with product managers and UX to ship customer‑visible features that measurably improve reliability, safety, and sustainability.
  • Perform Exploratory Data Analysis (EDA) on structured, semi‑structured, and unstructured datasets to identify patterns, correlations, feature importance, and data quality issues. (Consistent with ML engineer responsibilities to analyze data before model development.)
  • Conduct deep research on asset-related, operational, and domain-specific datasets to understand root causes, trends, and predictive signals.

What you’ll bring

Required Experience

  • 8-10 years total software/ML engineering experience, with 2+ years building and operating ML systems in production.
  • 1+ years hands‑on LLM application development (e.g., RAG, fine‑tuning, prompt engineering, evaluators/guardrails, agentic workflows) using packages such as Langchain and Langgraph.
  • AWS proficiency (3+ years): Strong with core services (EKS/ECS, Lambda, S3, DynamoDB/RDS, Step Functions, IAM) and ML stack (SageMaker, Bedrock or HF on AWS). (Representative AWS ML role skills.)
  • Modeling & frameworks: Python, PyTorch, Hugging Face ecosystem; vector stores (e.g., OpenSearch, PGVector, Pinecone), embeddings, retrieval, and evaluation metrics for NLP/LLMs. (In line with senior LLM roles.)
  • MLOps: CI/CD for ML, model registries, experiment tracking, telemetry/monitoring, automated retraining; Docker/Kubernetes, GitHub Actions/GitLab CI. (Current MLOps expectations.)
  • Data engineering fluency: ETL/ELT, streaming/batch (Spark/Flink), data quality and governance controls for ML.

Nice to have

  • Experience with distributed training (FSDP, DeepSpeed), RLHF, or Inferentia/Trainium optimization.
  • Exposure to sustainability/asset/intelligent operations domains.
  • Familiarity with security & compliance for ML systems in enterprise environments. (Frequently included in senior ML roles.)

How you’ll work

  • Pragmatic and product‑oriented: You bias to measurable outcomes and iterate quickly with stakeholders. (Modern senior ML role framing.)
  • Engineering excellence: You write production‑quality Python, design reliable APIs/services, and uphold testing/observability standards. (Common duties in senior templates.)
  • Collaborative leadership: You mentor peers and influence architecture across teams. (Industry‑standard senior expectations.)

Qualifications

  • Bachelor’s in CS/EE/Math or related field (Master’s preferred) or equivalent practical experience. (Typical for senior ML roles.)

Join a mission‑driven team building technology that keeps communities running—safer, greener, and more resilient—at global scale. You’ll pair startup‑speed product work with the reach and rigor of Siemens.

This role is open for Banaglore, Pune, Chennai locations.

About the company

Funding

AMOUNT RAISED
$8.9M
FUNDED OVER
1 round
Round
U
$8900000
Unknown - Jul 2010

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