Senior AI/ML Engineer (Remote, EST, Anywhere in Pakistan, USD Salary)
HR POD - Hiring Talent Globally- Location
- Remote (EST) · Pakistan
- Workplace
- Remote
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- Full Time
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Posted 13d ago
Senior AI/ML Engineer (Remote, EST, Anywhere in Pakistan, USD Salary) - HR POD - Hiring Talent Globally | Career Page
Senior AI/ML Engineer (Remote, EST, Anywhere in Pakistan, USD Salary)
Lahore, Pakistan
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Job Openings Senior AI/ML Engineer (Remote, EST, Anywhere in Pakistan, USD Salary)
About the job Senior AI/ML Engineer (Remote, EST, Anywhere in Pakistan, USD Salary)
Requirements
- Strong experience with FastAPI (or equivalent async frameworks), including dependency injection, UV, Pydantic, and async/await patterns (including thread pool executors for blocking operations).
- Solid understanding of REST API design, including multi-tenancy, pagination, filtering, JWT/OAuth2 authentication, and structured error handling.
- Proficiency in SQLAlchemy (including async sessions), raw parameterized queries, schema design, and migrations.
- Hands-on experience integrating multiple LLM providers (e.g., OpenAI, Anthropic, AWS Bedrock, Ollama, Google Gemini, Snowflake Cortex) using provider abstraction layers.
- Experience with JSON response validation, markdown/code-block extraction, and fallback error handling (preferably using frameworks like Pydantic).
- Knowledge of prompt engineering techniques, including context injection, temperature/token tuning, and confidence scoring.
- Familiarity with embedding-based retrieval and similarity scoring.
- Experience with production-grade agentic frameworks such as Pydantic AI (structured output generation, agents).
- Strong experience with gradient boosting models (e.g., XGBoost, LightGBM), including GPU-accelerated training, hyperparameter tuning, and evaluation.
- Expertise in segmentation, anomaly detection, and feature engineering on high-frequency sensor data.
- Experience with train/test splits, feature engineering, model evaluation (R², MAE, etc.), and experiment tracking (e.g., MLflow).
- Understanding of when to combine classical ML with LLM-based components (e.g., LLM-assisted labeling, embedding features in tree models).
- Strong database knowledge, including complex schemas, JSONB, partitioned tables, row-level security, query optimization, and vector extensions (e.g., pgvector).
- Familiarity with NoSQL databases like MongoDB and specialized databases such as Redis and Qdrant is a plus.
- Experience with Snowflake (including Snowpark, Model Registry, and Cortex) or equivalent platforms.
- Hands-on experience with AWS services such as Bedrock, ECS, and EC2.
- Experience with Docker and CI/CD pipelines.
- Familiarity with S3 or equivalent object storage solutions.
- Ability to work within VPN-gated infrastructure.
- Experience across multiple client environments or industries (consulting background preferred).
- Exposure to Industrial IoT or sensor data (high-frequency telemetry, signal processing).
- Experience in NL-to-SQL or text-to-query system design.
- Ability to handle multilingual data and implement internationalization.
Responsibilities
- Design and integrate LLM-powered features, including conversational interfaces, AI agents, structured generation, and retrieval-augmented systems.
- Build and maintain ML pipelines for prediction, anomaly detection, classification, and time-series analysis.
- Develop backend APIs and services connecting data sources, models, and client-facing applications.
- Work with structured and unstructured data across relational databases, data warehouses, and external APIs.
- Optimize model performance and scalability for production environments, including monitoring and fine-tuning.
- Collaborate with cross-functional teams (product, data, and engineering) to translate business requirements into technical solutions.
- Ensure code quality, documentation, and best practices for deployment, testing, and maintainability.
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- X (Formerly Twitter)
Skills
- FastAPI
- UV
- Pydantic
- REST API
- JWT
- OAuth2
- SQLAlchemy
- OpenAI
- Anthropic
- AWS Bedrock
- Ollama
- Google Gemini
- Snowflake Cortex
- Pydantic AI
- XGBoost
- LightGBM
- MLflow
- JSONB
- pgvector
- Snowflake
- Snowpark
- AWS
- ECS
- EC2
- Docker
- CI/CD
- S3
- MongoDB
- Redis
- Qdrant
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