Advanced Engineer – Embedded Machine Learning

Posted 21 Days Ago
Be an Early Applicant
Bangalore, Bengaluru Urban, Karnataka, IND
In-Office
Senior level
Consumer Web • Information Technology
The Role
Design, optimize, deploy, and monitor ML models for in-vehicle audio/infotainment on embedded platforms. Build end-to-end ML systems, enable OTA updates and continuous training, optimize models for edge hardware, collaborate with DSP and data teams, implement MLOps/CI/CD, and ensure privacy, reliability, and real-time performance.
Summary Generated by Built In
HARMAN’s engineers and designers are creative, purposeful and agile. As part of this team, you’ll combine your technical expertise with innovative ideas to help drive cutting-edge solutions in the car, enterprise and connected ecosystem. Every day, you will push the boundaries of creative design, and HARMAN is committed to providing you with the opportunities, innovative technologies and resources to build a successful career.

A Career at HARMAN

As a technology leader that is rapidly on the move, HARMAN is filled with people who are focused on making life better. Innovation, inclusivity and teamwork are a part of our DNA. When you add that to the challenges we take on and solve together, you’ll discover that at HARMAN you can grow, make a difference and be proud of the work you do everyday.

Introduction: A Career at HARMAN Automotive

We’re a global, multi-disciplinary team that’s putting the innovative power of technology to work and transforming tomorrow. At HARMAN Automotive, we give you the keys to fast-track your career.

  • Engineer audio systems and integrated technology platforms that augment the driving experience
  • Combine ingenuity, in-depth research, and a spirit of collaboration with design and engineering excellence
  • Advance in-vehicle infotainment, safety, efficiency, and enjoyment

About the Role

As an Embedded ML Engineer on the Innovation Team, you will design and manage end-to-end machine learning systems that continuously enhance in-vehicle audio and infotainment experiences. You will transform raw and real-world data into production-ready solutions while ensuring seamless integration, monitoring, and iteration of models deployed on embedded platforms.You will be involved in the full lifecycle from training to inference collaborating closely with Data Scientists, DSP Engineers, and Audio Experts to design models and audio features. Your key responsibilities will include optimizing model performance on embedded devices and enabling remote updates to deliver continuous improvements based on new data and enhanced features. Additionally, you will help establish a closed-loop system by integrating telemetry, model performance monitoring, and continuous retraining or system enhancements based on real-world usage, while adhering to strict privacy, safety, and reliability standards.

What You Will Do

  • Deploy ML models on embedded devices such as ARM processors, GPUs, NPUs, SHARC, and other DSP architectures.
  • Optimize models for edge hardware (e.g., quantization, pruning, distillation) to ensure real‑time execution within strict latency, memory, and compute budgets.
  • Collaborate with Data Scientists and DSP Engineers to convert research notebooks into robust, testable training and inference code; define evaluation criteria, acceptance thresholds, and quality guardrails.
  •  Build end-to-end ML systems, including telemetry ingestion from vehicles, data validation, feature processing, training, evaluation, packaging, and deployment to production environments.
  • Implement continuous training and continuous deployment (CT/CI/CD for ML) with full traceability of model and version registries, along with safe rollback mechanisms.
  • Partner with Embedded DSP Engineers to ensure real‑time execution performance, leveraging hardware accelerators such as SIMD, MMA or NEON units.
  • Estimate and measure model‑footprint metrics (CPU utilization, memory usage, latency, etc.).
  • Redesign or restructure model architectures to reduce embedded resource consumption while maintaining similar levels of accuracy and overall model performance.
  • Collaborate on OTA and data‑collection strategies to support continuous model improvement while adhering to strict privacy constraints.
  • Contribute to internal documentation, reusable components, and best practices; mentor peers on MLOps workflows and edge optimization techniques.
  • Implement monitoring systems to track model performance, data drift, and system behavior in production, ensuring reliability and continuous improvement based on real-world usage.
  • Design and implement monitoring systems to track model performance, data drift, and system behavior in production, ensuring reliability and continuous improvement based on real-world usage.
  • Provide guidance to less‑experienced team members on model deployment strategies and automation of ML pipelines.

What You Need to Be Successful

  • 6+ years of end‑to‑end ML development experience, including model training, optimization, deployment, and monitoring.
  • Proficiency in C/C++ programming language for embedded systems
  • Experience working with audio, image or signal processing domains
  • Experience building data collection architecture design and overall Data Engineering infrastructure
  • Experience working with automotive platforms such as Android Automotive OS, QNX, and embedded Linux.
  • Understanding of audio‑hardware communication protocols such as TDM and I²S.
  • Experience profiling and optimizing models on SoC or DSPS (Qualcomm, NXP, TI, NVIDIA SHARC, TI)
  • Practical experience deploying models on embedded devices such as ARM Cortex cores, GPUs, NPUs, and DSPs (e.g., SHARC).
  • Experience building MLOps pipelines, including automated training jobs, dataset versioning/switching, model optimization workflows, and unit tests for ML code.
  • Strong understanding of real‑time systems execution constraints (scheduling, interrupts, shared‑core resource).
  • Strong proficiency in Python and production‑grade machine learning using frameworks such as TensorFlow, PyTorch, scikit‑learn, NumPy, and Pandas.
  • Experience with MLOps practices and CI/CD automation for ML model delivery.
  • Experience working with data lakes and cloud data platforms (AWS S3, Azure, Databricks, etc.) for storage, processing, and training pipelines.
  • Expertise in edge model optimization techniques including quantization (dynamic and post‑training), pruning, model compression, and mixed‑precision execution.
  • Working knowledge of privacy‑preserving data handling (pseudonymization, anonymization, etc.), data‑quality checks, and data‑lineage tracking.
  • Strong communication and collaboration skills, with the ability to work effectively in an intercultural and cross‑functional team.
  • Proven ability to write unit tests, integration tests, and performance benchmarks for ML models and data pipelines.
  • Ability to work in rapid prototyping environments; self‑driven, fast learner, with a strong passion for innovation and problem solving with strong sense of ownership to reach goals on time.

Bonus Points if You Have

  • Bachelor’s or Master’s degree in Computer Science, Electrical Engineering, Machine Learning, Signal Processing, or a closely related field.
  • Applied knowledge of audio signal processing such as STFT, mel‑spectrogram features, and filtering and experience using python audio libraries like Librosa, SciPy, or PyAudio.
  • Familiarity with OTA update flows, artifact versioning, and safe rollback mechanisms.
  • Experience building reproducible working‑environment (docker, virtual environments)
  • Proven experience with formal software‑development processes and the Scrum framework.
  • Experience connecting data cloud services directly on python

What Makes You Eligible

  • Advanced English communication skill, will be part of a Global team
  • Willing to work in an office at Bangalore.

What We Offer

  • Flexible work environment, allowing for full-time remote work globally for positions that can be performed outside a HARMAN or customer location
  • Access to employee discounts on world-class products (JBL, HARMAN Kardon, AKG, and more)
  • Extensive training opportunities through our own HARMAN University
  • Competitive wellness benefits
  • Tuition reimbursement
  • “Be Brilliant” employee recognition and rewards program
  • An inclusive and diverse work environment that fosters and encourages professional and personal development.

#LI-AD3

HARMAN is proud to be an Equal Opportunity / Affirmative Action employer. All qualified applicants will receive consideration for employment without regard to race, religion, color, national origin, gender (including pregnancy, childbirth, or related medical conditions), sexual orientation, gender identity, gender expression, age, status as a protected veteran, status as an individual with a disability, or other applicable legally protected characteristics.

Skills Required

  • 6+ years of end-to-end ML development experience, including model training, optimization, deployment, and monitoring.
  • Proficiency in C/C++ programming for embedded systems.
  • Experience working with audio, image, or signal processing domains.
  • Experience building data collection architecture design and overall Data Engineering infrastructure.
  • Experience with automotive platforms such as Android Automotive OS, QNX, and embedded Linux.
  • Understanding of audio-hardware communication protocols such as TDM and I2S.
  • Experience profiling and optimizing models on SoC or DSPs (Qualcomm, NXP, TI, NVIDIA SHARC, TI).
  • Practical experience deploying models on embedded devices such as ARM Cortex cores, GPUs, NPUs, and DSPs (e.g., SHARC).
  • Experience building MLOps pipelines, including automated training jobs, dataset versioning/switching, model optimization workflows, and unit tests for ML code.
  • Strong understanding of real-time systems execution constraints (scheduling, interrupts, shared-core resource).
  • Strong proficiency in Python and production-grade ML frameworks (TensorFlow, PyTorch, scikit-learn, NumPy, Pandas).
  • Experience with data lakes and cloud data platforms (AWS S3, Azure, Databricks) for storage, processing, and training pipelines.
  • Expertise in edge model optimization techniques including quantization, pruning, model compression, and mixed-precision execution.
  • Working knowledge of privacy-preserving data handling (pseudonymization, anonymization), data-quality checks, and data-lineage tracking.
  • Proven ability to write unit tests, integration tests, and performance benchmarks for ML models and data pipelines.
  • Strong communication and collaboration skills; ability to work in intercultural, cross-functional teams.
  • Ability to work in rapid prototyping environments; self-driven, fast learner, strong ownership.
  • Advanced English communication skill.
  • Willing to work in an office at Bangalore.
  • Bachelor's or Master's degree in Computer Science, Electrical Engineering, Machine Learning, Signal Processing, or closely related field.
  • Applied knowledge of audio signal processing (STFT, mel-spectrograms) and Python audio libraries (Librosa, SciPy, PyAudio).
  • Familiarity with OTA update flows, artifact versioning, and safe rollback mechanisms.
  • Experience building reproducible working-environments (Docker, virtual environments).
  • Proven experience with formal software-development processes and Scrum.
  • Experience connecting data cloud services directly in Python.

Harman Compensation & Benefits Highlights

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

  • Healthcare Strength Healthcare coverage is described as comprehensive, often including medical, dental, and vision plans, with HSAs/FSAs and disability or life insurance also referenced. Wellbeing support such as EAP access and onsite occupational health services is also part of the package in some regions.
  • Wellbeing & Lifestyle Benefits Lifestyle-oriented benefits include employee product discounts and region-specific perks like free fruit deliveries, Cycle to Work schemes, and meal coupons or allowances. Flexible schedules and work-from-home options are also part of the overall offering where roles and projects allow.
  • Fair & Transparent Compensation Pay is repeatedly characterized as solid or market-aligned for many roles, with salary payments described as consistent and on time. Compensation is also tied to performance in some accounts, reinforcing a perception of basic fairness for a portion of employees.

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The Company
HQ: Stamford, CT
22,291 Employees
Year Founded: 1980

What We Do

Headquartered in Stamford, Connecticut, HARMAN (harman.com) designs and engineers connected products and solutions for automakers, consumers, and enterprises worldwide, including connected car systems, audio and visual products, enterprise automation solutions; and services supporting the Internet of Things. With leading brands including AKG®, Harman Kardon®, Infinity®, JBL®, Lexicon®, Mark Levinson® and Revel®, HARMAN is admired by audiophiles, musicians and the entertainment venues where they perform around the world. More than 50 million automobiles on the road today are equipped with HARMAN audio and connected car systems. Our software services power billions of mobile devices and systems that are connected, integrated and secure across all platforms, from work and home to car and mobile. HARMAN has a workforce of approximately 30,000 people across the Americas, Europe, and Asia. In March 2017, HARMAN became a wholly-owned subsidiary of Samsung Electronics Co., Ltd. HARMAN is an Equal Opportunity, Affirmative Action employer. Minorities, women, veterans and individuals with disabilities are encouraged to apply. HARMAN offers a great work environment, challenging career opportunities, professional training and competitive compensation. Looking for a challenge where your experience is valued? Come see what you can achieve as a leader with HARMAN!

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